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Best Predictive Analytics Tools and Software

Blue Bowen
BB
Researched and written by Blue Bowen

Predictive analytics software mines and analyzes historical data patterns to predict future outcomes by extracting information from data sets to determine patterns and trends. Using a range of statistical analysis and algorithms, analysts use predictive analytics tools to build decision models, which business managers can use to plan for the best possible outcome. Analysts, business users, data scientists, and developers all use predictive analytics solutions to better understand customers, products, and partners and to identify potential risks and opportunities for a company.

Predictive analytics platforms enable organizations to use big data (both stored and real-time) to move from a historical view to a forward-looking perspective of the customer. These tools and techniques can be deployed both on premise (usually for enterprise users) and in the cloud. While the majority of predictive analytics software is proprietary, versions that are based on open-source technology do exist. Recent trends in software for predictive analytics show its integration with business intelligence platforms, ERP systems, or other digital analytics software.

To qualify for inclusion in the Predictive Analytics category, a product must:

Mine and analyze structured and/or unstructured data
Create datasets and/or data visualizations from compiled data
Create predictive models to forecast future probabilities
Adapt to change and revisions
Allow import and export from office suites or other data-collecting channels
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Featured Predictive Analytics Software At A Glance

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G2 takes pride in showing unbiased reviews on user satisfaction in our ratings and reports. We do not allow paid placements in any of our ratings, rankings, or reports. Learn about our scoring methodologies.

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262 Listings in Predictive Analytics Available
(1,201)4.5 out of 5
4th Easiest To Use in Predictive Analytics software
View top Consulting Services for Google Cloud BigQuery
Save to My Lists
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    BigQuery is a fully managed, AI-ready data analytics platform that helps you maximize value from your data and is designed to be multi-engine, multi-format, and multi-cloud. Store 10 GiB of data and

    Users
    • Data Engineer
    • Data Analyst
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 37% Enterprise
    • 36% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Google Cloud BigQuery Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    169
    Speed
    139
    Fast Querying
    120
    Integrations
    119
    Query Efficiency
    116
    Cons
    Expensive
    126
    Query Issues
    77
    Cost Issues
    58
    Cost Management
    58
    Learning Curve
    54
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Google Cloud BigQuery features and usability ratings that predict user satisfaction
    8.7
    Has the product been a good partner in doing business?
    Average: 9.1
    7.8
    AI Text Summarization
    Average: 8.1
    8.8
    Algorithms
    Average: 8.5
    7.5
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Google
    Company Website
    Year Founded
    1998
    HQ Location
    Mountain View, CA
    Twitter
    @google
    31,497,057 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    325,307 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

BigQuery is a fully managed, AI-ready data analytics platform that helps you maximize value from your data and is designed to be multi-engine, multi-format, and multi-cloud. Store 10 GiB of data and

Users
  • Data Engineer
  • Data Analyst
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 37% Enterprise
  • 36% Mid-Market
Google Cloud BigQuery Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
169
Speed
139
Fast Querying
120
Integrations
119
Query Efficiency
116
Cons
Expensive
126
Query Issues
77
Cost Issues
58
Cost Management
58
Learning Curve
54
Google Cloud BigQuery features and usability ratings that predict user satisfaction
8.7
Has the product been a good partner in doing business?
Average: 9.1
7.8
AI Text Summarization
Average: 8.1
8.8
Algorithms
Average: 8.5
7.5
AI Text Generation
Average: 8.1
Seller Details
Seller
Google
Company Website
Year Founded
1998
HQ Location
Mountain View, CA
Twitter
@google
31,497,057 Twitter followers
LinkedIn® Page
www.linkedin.com
325,307 employees on LinkedIn®
(3,362)4.4 out of 5
2nd Easiest To Use in Predictive Analytics software
View top Consulting Services for Tableau
Save to My Lists
Entry Level Price:$15.00
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Tableau is the world’s leading AI-powered analytics platform. Offering a suite of analytics and business intelligence tools, Tableau turns trusted data into actionable insights so you can make better

    Users
    • Data Analyst
    • Business Analyst
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 42% Enterprise
    • 36% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • Tableau is a data visualization tool that transforms complex datasets into clear, interactive dashboards.
    • Users like Tableau's intuitive drag-and-drop interface, its ability to handle large volumes of data, and its seamless integration with multiple enterprise data platforms.
    • Users reported that Tableau can become resource-heavy when working with very large datasets, the learning curve can be steep for beginners, and the licensing cost is high for smaller organizations.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Tableau Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    507
    Data Visualization
    450
    Visualization
    347
    Features
    264
    Integrations
    225
    Cons
    Learning Curve
    230
    Learning Difficulty
    190
    Expensive
    171
    Slow Performance
    116
    Difficulty
    114
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Tableau features and usability ratings that predict user satisfaction
    8.5
    Has the product been a good partner in doing business?
    Average: 9.1
    8.0
    AI Text Summarization
    Average: 8.1
    8.4
    Algorithms
    Average: 8.5
    8.0
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Company Website
    Year Founded
    1999
    HQ Location
    San Francisco, CA
    Twitter
    @salesforce
    578,227 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    86,064 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Tableau is the world’s leading AI-powered analytics platform. Offering a suite of analytics and business intelligence tools, Tableau turns trusted data into actionable insights so you can make better

Users
  • Data Analyst
  • Business Analyst
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 42% Enterprise
  • 36% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • Tableau is a data visualization tool that transforms complex datasets into clear, interactive dashboards.
  • Users like Tableau's intuitive drag-and-drop interface, its ability to handle large volumes of data, and its seamless integration with multiple enterprise data platforms.
  • Users reported that Tableau can become resource-heavy when working with very large datasets, the learning curve can be steep for beginners, and the licensing cost is high for smaller organizations.
Tableau Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
507
Data Visualization
450
Visualization
347
Features
264
Integrations
225
Cons
Learning Curve
230
Learning Difficulty
190
Expensive
171
Slow Performance
116
Difficulty
114
Tableau features and usability ratings that predict user satisfaction
8.5
Has the product been a good partner in doing business?
Average: 9.1
8.0
AI Text Summarization
Average: 8.1
8.4
Algorithms
Average: 8.5
8.0
AI Text Generation
Average: 8.1
Seller Details
Company Website
Year Founded
1999
HQ Location
San Francisco, CA
Twitter
@salesforce
578,227 Twitter followers
LinkedIn® Page
www.linkedin.com
86,064 employees on LinkedIn®

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(679)4.3 out of 5
7th Easiest To Use in Predictive Analytics software
View top Consulting Services for Amazon QuickSight
Save to My Lists
Entry Level Price:$3.00
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Amazon QuickSight is a cloud-based unified business intelligence (BI) service at hyperscale. With QuickSight, all users can meet varying analytic needs from the same source of truth through modern int

    Users
    • Data Analyst
    • Software Engineer
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 40% Small-Business
    • 36% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • Amazon QuickSight is a business intelligence tool that integrates with AWS services to provide data visualization and analytics capabilities.
    • Reviewers frequently mention the seamless integration with AWS services, the ability to handle large datasets efficiently, and the user-friendly interface for creating interactive dashboards.
    • Reviewers experienced limitations in customization options, a less intuitive user interface compared to other BI tools, and challenges with advanced features requiring additional AWS knowledge or setup.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Amazon QuickSight Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    134
    Integrations
    108
    Easy Integrations
    83
    Data Visualization
    75
    Scalability
    57
    Cons
    Limited Customization
    96
    Learning Curve
    53
    Limited Visualization
    41
    Limited Features
    39
    Expensive
    32
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Amazon QuickSight features and usability ratings that predict user satisfaction
    8.3
    Has the product been a good partner in doing business?
    Average: 9.1
    8.2
    AI Text Summarization
    Average: 8.1
    8.1
    Algorithms
    Average: 8.5
    8.2
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Company Website
    Year Founded
    2006
    HQ Location
    Seattle, WA
    Twitter
    @awscloud
    2,217,439 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    143,584 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Amazon QuickSight is a cloud-based unified business intelligence (BI) service at hyperscale. With QuickSight, all users can meet varying analytic needs from the same source of truth through modern int

Users
  • Data Analyst
  • Software Engineer
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 40% Small-Business
  • 36% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • Amazon QuickSight is a business intelligence tool that integrates with AWS services to provide data visualization and analytics capabilities.
  • Reviewers frequently mention the seamless integration with AWS services, the ability to handle large datasets efficiently, and the user-friendly interface for creating interactive dashboards.
  • Reviewers experienced limitations in customization options, a less intuitive user interface compared to other BI tools, and challenges with advanced features requiring additional AWS knowledge or setup.
Amazon QuickSight Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
134
Integrations
108
Easy Integrations
83
Data Visualization
75
Scalability
57
Cons
Limited Customization
96
Learning Curve
53
Limited Visualization
41
Limited Features
39
Expensive
32
Amazon QuickSight features and usability ratings that predict user satisfaction
8.3
Has the product been a good partner in doing business?
Average: 9.1
8.2
AI Text Summarization
Average: 8.1
8.1
Algorithms
Average: 8.5
8.2
AI Text Generation
Average: 8.1
Seller Details
Company Website
Year Founded
2006
HQ Location
Seattle, WA
Twitter
@awscloud
2,217,439 Twitter followers
LinkedIn® Page
www.linkedin.com
143,584 employees on LinkedIn®
(613)4.3 out of 5
3rd Easiest To Use in Predictive Analytics software
Save to My Lists
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Organizations face increasing demands for high-powered analytics that produce fast, trustworthy results. Whether it’s providing teams of data scientists with advanced machine learning capabilities or

    Users
    • Student
    • Biostatistician
    Industries
    • Pharmaceuticals
    • Banking
    Market Segment
    • 34% Small-Business
    • 32% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • SAS Viya is a cloud-based analytics platform that supports advanced analytics, machine learning, and data processing in one platform.
    • Reviewers frequently mention its strong performance, fast processing, easy integration with cloud platforms, and its ability to make teamwork easier by keeping everything in one place.
    • Reviewers mentioned that SAS Viya can be complex to configure, requires strong technical skills to manage in large environments, and its high cost can be a barrier for smaller organizations or teams with limited budgets.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • SAS Viya Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    279
    Features
    199
    Analytics
    172
    Data Analysis
    143
    User Interface
    133
    Cons
    Learning Difficulty
    132
    Learning Curve
    129
    Complexity
    125
    Difficult Learning
    102
    Not User-Friendly
    96
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • SAS Viya features and usability ratings that predict user satisfaction
    8.2
    Has the product been a good partner in doing business?
    Average: 9.1
    6.7
    AI Text Summarization
    Average: 8.1
    8.6
    Algorithms
    Average: 8.5
    6.3
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Company Website
    Year Founded
    1976
    HQ Location
    Cary, NC
    Twitter
    @SASsoftware
    61,226 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    18,116 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Organizations face increasing demands for high-powered analytics that produce fast, trustworthy results. Whether it’s providing teams of data scientists with advanced machine learning capabilities or

Users
  • Student
  • Biostatistician
Industries
  • Pharmaceuticals
  • Banking
Market Segment
  • 34% Small-Business
  • 32% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • SAS Viya is a cloud-based analytics platform that supports advanced analytics, machine learning, and data processing in one platform.
  • Reviewers frequently mention its strong performance, fast processing, easy integration with cloud platforms, and its ability to make teamwork easier by keeping everything in one place.
  • Reviewers mentioned that SAS Viya can be complex to configure, requires strong technical skills to manage in large environments, and its high cost can be a barrier for smaller organizations or teams with limited budgets.
SAS Viya Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
279
Features
199
Analytics
172
Data Analysis
143
User Interface
133
Cons
Learning Difficulty
132
Learning Curve
129
Complexity
125
Difficult Learning
102
Not User-Friendly
96
SAS Viya features and usability ratings that predict user satisfaction
8.2
Has the product been a good partner in doing business?
Average: 9.1
6.7
AI Text Summarization
Average: 8.1
8.6
Algorithms
Average: 8.5
6.3
AI Text Generation
Average: 8.1
Seller Details
Company Website
Year Founded
1976
HQ Location
Cary, NC
Twitter
@SASsoftware
61,226 Twitter followers
LinkedIn® Page
www.linkedin.com
18,116 employees on LinkedIn®
(1,126)4.2 out of 5
Optimized for quick response
8th Easiest To Use in Predictive Analytics software
View top Consulting Services for Adobe Analytics
Save to My Lists
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Adobe Analytics empowers marketing, product, and business teams with insights to understand their customers and the journeys they take across digital channels, products, content, and services. From di

    Users
    • Data Analyst
    • Analyst
    Industries
    • Marketing and Advertising
    • Information Technology and Services
    Market Segment
    • 43% Enterprise
    • 29% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Adobe Analytics Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    58
    Insights
    58
    Analytics
    55
    Features
    46
    Reporting
    28
    Cons
    Learning Curve
    31
    Expensive
    18
    Slow Performance
    17
    Steep Learning Curve
    14
    Slow Loading
    13
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Adobe Analytics features and usability ratings that predict user satisfaction
    8.0
    Has the product been a good partner in doing business?
    Average: 9.1
    9.0
    AI Text Summarization
    Average: 8.1
    8.6
    Algorithms
    Average: 8.5
    8.9
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Adobe
    Company Website
    Year Founded
    1982
    HQ Location
    San Jose, CA
    Twitter
    @Adobe
    958,798 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    41,406 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Adobe Analytics empowers marketing, product, and business teams with insights to understand their customers and the journeys they take across digital channels, products, content, and services. From di

Users
  • Data Analyst
  • Analyst
Industries
  • Marketing and Advertising
  • Information Technology and Services
Market Segment
  • 43% Enterprise
  • 29% Mid-Market
Adobe Analytics Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
58
Insights
58
Analytics
55
Features
46
Reporting
28
Cons
Learning Curve
31
Expensive
18
Slow Performance
17
Steep Learning Curve
14
Slow Loading
13
Adobe Analytics features and usability ratings that predict user satisfaction
8.0
Has the product been a good partner in doing business?
Average: 9.1
9.0
AI Text Summarization
Average: 8.1
8.6
Algorithms
Average: 8.5
8.9
AI Text Generation
Average: 8.1
Seller Details
Seller
Adobe
Company Website
Year Founded
1982
HQ Location
San Jose, CA
Twitter
@Adobe
958,798 Twitter followers
LinkedIn® Page
www.linkedin.com
41,406 employees on LinkedIn®
(450)4.1 out of 5
Optimized for quick response
View top Consulting Services for IBM Cognos Analytics
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    IBM Cognos Analytics acts as your trusted co-pilot for business with the aim of making you smarter, faster, and more confident in your data-driven decisions. IBM Cognos Analytics gives every user

    Users
    • Data Analyst
    Industries
    • Information Technology and Services
    • Financial Services
    Market Segment
    • 59% Enterprise
    • 26% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • IBM Cognos Analytics is a tool that bridges the gap between data and understanding, allowing users to create dashboards and reports from multiple data sources.
    • Users frequently mention the ease of creating visually engaging dashboards, the ability to handle complex data, and the tool's integration capabilities with various data sources.
    • Users mentioned the steep learning curve for new users, the complexity of building reports without in-depth training, and the occasional slow performance when handling large datasets.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • IBM Cognos Analytics Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    37
    Report Generation
    16
    Data Visualization
    15
    Analytics
    13
    User Interface
    12
    Cons
    Learning Curve
    17
    Learning Difficulty
    10
    Slow Performance
    9
    Complexity
    8
    Complex Usage
    6
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • IBM Cognos Analytics features and usability ratings that predict user satisfaction
    7.8
    Has the product been a good partner in doing business?
    Average: 9.1
    8.1
    AI Text Summarization
    Average: 8.1
    9.0
    Algorithms
    Average: 8.5
    7.9
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    IBM
    Company Website
    Year Founded
    1911
    HQ Location
    Armonk, NY
    Twitter
    @IBM
    709,128 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    339,241 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

IBM Cognos Analytics acts as your trusted co-pilot for business with the aim of making you smarter, faster, and more confident in your data-driven decisions. IBM Cognos Analytics gives every user

Users
  • Data Analyst
Industries
  • Information Technology and Services
  • Financial Services
Market Segment
  • 59% Enterprise
  • 26% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • IBM Cognos Analytics is a tool that bridges the gap between data and understanding, allowing users to create dashboards and reports from multiple data sources.
  • Users frequently mention the ease of creating visually engaging dashboards, the ability to handle complex data, and the tool's integration capabilities with various data sources.
  • Users mentioned the steep learning curve for new users, the complexity of building reports without in-depth training, and the occasional slow performance when handling large datasets.
IBM Cognos Analytics Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
37
Report Generation
16
Data Visualization
15
Analytics
13
User Interface
12
Cons
Learning Curve
17
Learning Difficulty
10
Slow Performance
9
Complexity
8
Complex Usage
6
IBM Cognos Analytics features and usability ratings that predict user satisfaction
7.8
Has the product been a good partner in doing business?
Average: 9.1
8.1
AI Text Summarization
Average: 8.1
9.0
Algorithms
Average: 8.5
7.9
AI Text Generation
Average: 8.1
Seller Details
Seller
IBM
Company Website
Year Founded
1911
HQ Location
Armonk, NY
Twitter
@IBM
709,128 Twitter followers
LinkedIn® Page
www.linkedin.com
339,241 employees on LinkedIn®
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Hurree is an AI-powered platform that consolidates all your reporting data into a single, easy-to-use command centre. It connects with over 70 popular tools, giving you a single, reliable view of perf

    Users
    • CEO
    Industries
    • Marketing and Advertising
    • Information Technology and Services
    Market Segment
    • 37% Small-Business
    • 35% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • Hurree is a data visualization and analysis platform that centralizes performance metrics across marketing, sales, and user behavior, and offers customizable dashboards and reports.
    • Users frequently mention the ease of integrating multiple marketing and analytics platforms, the intuitive user interface, the real-time updates of automated dashboards, and the valuable insights provided by the AI assistant, Riva.
    • Reviewers experienced challenges with the initial setup of API connections, the mobile dashboard experience, the complexity of implementation for small companies, and the limited customization options for advanced reporting users.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Hurree Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    256
    Analytics
    161
    Data Visualization
    123
    Efficiency
    112
    Insights
    108
    Cons
    Learning Curve
    77
    Learning Difficulty
    42
    Missing Features
    41
    Limited Options
    39
    Complex Usage
    32
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Hurree features and usability ratings that predict user satisfaction
    9.2
    Has the product been a good partner in doing business?
    Average: 9.1
    9.5
    AI Text Summarization
    Average: 8.1
    9.4
    Algorithms
    Average: 8.5
    9.6
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Hurree
    Company Website
    Year Founded
    2018
    HQ Location
    Belfast, Antrim
    Twitter
    @Hurree_me
    915 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    42 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Hurree is an AI-powered platform that consolidates all your reporting data into a single, easy-to-use command centre. It connects with over 70 popular tools, giving you a single, reliable view of perf

Users
  • CEO
Industries
  • Marketing and Advertising
  • Information Technology and Services
Market Segment
  • 37% Small-Business
  • 35% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • Hurree is a data visualization and analysis platform that centralizes performance metrics across marketing, sales, and user behavior, and offers customizable dashboards and reports.
  • Users frequently mention the ease of integrating multiple marketing and analytics platforms, the intuitive user interface, the real-time updates of automated dashboards, and the valuable insights provided by the AI assistant, Riva.
  • Reviewers experienced challenges with the initial setup of API connections, the mobile dashboard experience, the complexity of implementation for small companies, and the limited customization options for advanced reporting users.
Hurree Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
256
Analytics
161
Data Visualization
123
Efficiency
112
Insights
108
Cons
Learning Curve
77
Learning Difficulty
42
Missing Features
41
Limited Options
39
Complex Usage
32
Hurree features and usability ratings that predict user satisfaction
9.2
Has the product been a good partner in doing business?
Average: 9.1
9.5
AI Text Summarization
Average: 8.1
9.4
Algorithms
Average: 8.5
9.6
AI Text Generation
Average: 8.1
Seller Details
Seller
Hurree
Company Website
Year Founded
2018
HQ Location
Belfast, Antrim
Twitter
@Hurree_me
915 Twitter followers
LinkedIn® Page
www.linkedin.com
42 employees on LinkedIn®
(915)4.2 out of 5
Optimized for quick response
15th Easiest To Use in Predictive Analytics software
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30% Off: 55.30 USD
  • Overview
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  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    IBM SPSS Statistics is an end-to-end statistical solution that simplifies advanced statistical analysis across industries for users of any statistical expertise. It offers comprehensive resources, exp

    Users
    • Research Assistant
    • Assistant Professor
    Industries
    • Higher Education
    • Research
    Market Segment
    • 43% Enterprise
    • 30% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • IBM SPSS Statistics Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    24
    Statistical Analysis
    15
    User Interface
    12
    Data Management
    8
    Analysis Capabilities
    7
    Cons
    Expensive
    16
    Poor Visualization
    10
    Learning Curve
    9
    Slow Performance
    7
    Performance Issues
    5
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • IBM SPSS Statistics features and usability ratings that predict user satisfaction
    8.0
    Has the product been a good partner in doing business?
    Average: 9.1
    10.0
    AI Text Summarization
    Average: 8.1
    7.7
    Algorithms
    Average: 8.5
    10.0
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    IBM
    Company Website
    Year Founded
    1911
    HQ Location
    Armonk, NY
    Twitter
    @IBM
    709,128 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    339,241 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

IBM SPSS Statistics is an end-to-end statistical solution that simplifies advanced statistical analysis across industries for users of any statistical expertise. It offers comprehensive resources, exp

Users
  • Research Assistant
  • Assistant Professor
Industries
  • Higher Education
  • Research
Market Segment
  • 43% Enterprise
  • 30% Mid-Market
IBM SPSS Statistics Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
24
Statistical Analysis
15
User Interface
12
Data Management
8
Analysis Capabilities
7
Cons
Expensive
16
Poor Visualization
10
Learning Curve
9
Slow Performance
7
Performance Issues
5
IBM SPSS Statistics features and usability ratings that predict user satisfaction
8.0
Has the product been a good partner in doing business?
Average: 9.1
10.0
AI Text Summarization
Average: 8.1
7.7
Algorithms
Average: 8.5
10.0
AI Text Generation
Average: 8.1
Seller Details
Seller
IBM
Company Website
Year Founded
1911
HQ Location
Armonk, NY
Twitter
@IBM
709,128 Twitter followers
LinkedIn® Page
www.linkedin.com
339,241 employees on LinkedIn®
(183)4.4 out of 5
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Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Dataiku is the Universal AI Platform, giving organizations control over their AI talent, processes, and technologies to unleash the creation of analytics, models, and agents. Aggressively agnostic, it

    Users
    • Data Scientist
    • Data Analyst
    Industries
    • Financial Services
    • Pharmaceuticals
    Market Segment
    • 61% Enterprise
    • 21% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • Dataiku is a platform that manages the entire data pipeline from data preparation to machine learning and deployment, allowing both technical and non-technical users to collaborate.
    • Users like the platform's ease of use, its ability to manage code and datasets visually, its AI-driven operation, its strong version control, and its no-code feature that aids those uncomfortable with coding.
    • Users reported issues with the platform feeling heavy for smaller projects, a steep initial learning curve, high licensing costs for small companies, limitations in scalability and integration, performance issues, and a lack of comprehensive documentation and tutorials.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Dataiku Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    82
    Features
    80
    Usability
    43
    Easy Integrations
    41
    Productivity Improvement
    41
    Cons
    Learning Curve
    42
    Steep Learning Curve
    25
    Slow Performance
    22
    Difficult Learning
    20
    Expensive
    20
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Dataiku features and usability ratings that predict user satisfaction
    8.6
    Has the product been a good partner in doing business?
    Average: 9.1
    8.3
    AI Text Summarization
    Average: 8.1
    8.0
    Algorithms
    Average: 8.5
    8.6
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Dataiku
    Company Website
    Year Founded
    2013
    HQ Location
    New York, NY
    Twitter
    @dataiku
    23,026 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    1,411 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Dataiku is the Universal AI Platform, giving organizations control over their AI talent, processes, and technologies to unleash the creation of analytics, models, and agents. Aggressively agnostic, it

Users
  • Data Scientist
  • Data Analyst
Industries
  • Financial Services
  • Pharmaceuticals
Market Segment
  • 61% Enterprise
  • 21% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • Dataiku is a platform that manages the entire data pipeline from data preparation to machine learning and deployment, allowing both technical and non-technical users to collaborate.
  • Users like the platform's ease of use, its ability to manage code and datasets visually, its AI-driven operation, its strong version control, and its no-code feature that aids those uncomfortable with coding.
  • Users reported issues with the platform feeling heavy for smaller projects, a steep initial learning curve, high licensing costs for small companies, limitations in scalability and integration, performance issues, and a lack of comprehensive documentation and tutorials.
Dataiku Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
82
Features
80
Usability
43
Easy Integrations
41
Productivity Improvement
41
Cons
Learning Curve
42
Steep Learning Curve
25
Slow Performance
22
Difficult Learning
20
Expensive
20
Dataiku features and usability ratings that predict user satisfaction
8.6
Has the product been a good partner in doing business?
Average: 9.1
8.3
AI Text Summarization
Average: 8.1
8.0
Algorithms
Average: 8.5
8.6
AI Text Generation
Average: 8.1
Seller Details
Seller
Dataiku
Company Website
Year Founded
2013
HQ Location
New York, NY
Twitter
@dataiku
23,026 Twitter followers
LinkedIn® Page
www.linkedin.com
1,411 employees on LinkedIn®
(220)4.6 out of 5
Optimized for quick response
13th Easiest To Use in Predictive Analytics software
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  • Overview
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  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Minitab® Statistical Software is a comprehensive data analysis solution designed to assist users in making informed, data-driven decisions through visualizations, statistical analysis, and predictive

    Users
    • Quality Manager
    Industries
    • Automotive
    • Manufacturing
    Market Segment
    • 47% Enterprise
    • 30% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Minitab Statistical Software Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    57
    Data Analysis
    50
    Statistical Analysis
    36
    Analysis Capabilities
    28
    Analysis
    27
    Cons
    Expensive
    20
    Learning Curve
    19
    Not User-Friendly
    12
    Complexity
    11
    Data Management Issues
    10
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Minitab Statistical Software features and usability ratings that predict user satisfaction
    8.6
    Has the product been a good partner in doing business?
    Average: 9.1
    7.4
    AI Text Summarization
    Average: 8.1
    8.3
    Algorithms
    Average: 8.5
    7.3
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Minitab
    Company Website
    Year Founded
    1972
    HQ Location
    State College, Pennsylvania, United States
    Twitter
    @Minitab
    5,034 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    700 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Minitab® Statistical Software is a comprehensive data analysis solution designed to assist users in making informed, data-driven decisions through visualizations, statistical analysis, and predictive

Users
  • Quality Manager
Industries
  • Automotive
  • Manufacturing
Market Segment
  • 47% Enterprise
  • 30% Mid-Market
Minitab Statistical Software Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
57
Data Analysis
50
Statistical Analysis
36
Analysis Capabilities
28
Analysis
27
Cons
Expensive
20
Learning Curve
19
Not User-Friendly
12
Complexity
11
Data Management Issues
10
Minitab Statistical Software features and usability ratings that predict user satisfaction
8.6
Has the product been a good partner in doing business?
Average: 9.1
7.4
AI Text Summarization
Average: 8.1
8.3
Algorithms
Average: 8.5
7.3
AI Text Generation
Average: 8.1
Seller Details
Seller
Minitab
Company Website
Year Founded
1972
HQ Location
State College, Pennsylvania, United States
Twitter
@Minitab
5,034 Twitter followers
LinkedIn® Page
www.linkedin.com
700 employees on LinkedIn®
(862)4.2 out of 5
View top Consulting Services for SAP Analytics Cloud
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Entry Level Price:$36.00
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    With the SAP Analytics Cloud solution, you can bring together analytics and planning with unique integration to SAP applications and smooth access to heterogenous data sources. As the analytics and pl

    Users
    • Senior Consultant
    • Consultant
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 50% Enterprise
    • 27% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • SAP Analytics Cloud is a unified platform that combines planning, reporting, and visualization, offering real-time insights and interactive dashboards.
    • Reviewers like the seamless integration with SAP S/4HANA, the intuitive dashboards, and the ability to make data-driven decisions quickly.
    • Users reported performance issues when working with large datasets, a steep learning curve for new users, and limitations in customization options.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • SAP Analytics Cloud Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    53
    Data Analysis
    44
    Data Visualization
    44
    Integrations
    33
    Analytics
    32
    Cons
    Slow Performance
    27
    Learning Curve
    26
    Large Dataset Handling
    23
    Performance Issues
    23
    Learning Difficulty
    22
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • SAP Analytics Cloud features and usability ratings that predict user satisfaction
    8.3
    Has the product been a good partner in doing business?
    Average: 9.1
    8.9
    AI Text Summarization
    Average: 8.1
    8.0
    Algorithms
    Average: 8.5
    8.7
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    SAP
    Company Website
    Year Founded
    1972
    HQ Location
    Walldorf
    Twitter
    @SAP
    297,327 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    135,108 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

With the SAP Analytics Cloud solution, you can bring together analytics and planning with unique integration to SAP applications and smooth access to heterogenous data sources. As the analytics and pl

Users
  • Senior Consultant
  • Consultant
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 50% Enterprise
  • 27% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • SAP Analytics Cloud is a unified platform that combines planning, reporting, and visualization, offering real-time insights and interactive dashboards.
  • Reviewers like the seamless integration with SAP S/4HANA, the intuitive dashboards, and the ability to make data-driven decisions quickly.
  • Users reported performance issues when working with large datasets, a steep learning curve for new users, and limitations in customization options.
SAP Analytics Cloud Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
53
Data Analysis
44
Data Visualization
44
Integrations
33
Analytics
32
Cons
Slow Performance
27
Learning Curve
26
Large Dataset Handling
23
Performance Issues
23
Learning Difficulty
22
SAP Analytics Cloud features and usability ratings that predict user satisfaction
8.3
Has the product been a good partner in doing business?
Average: 9.1
8.9
AI Text Summarization
Average: 8.1
8.0
Algorithms
Average: 8.5
8.7
AI Text Generation
Average: 8.1
Seller Details
Seller
SAP
Company Website
Year Founded
1972
HQ Location
Walldorf
Twitter
@SAP
297,327 Twitter followers
LinkedIn® Page
www.linkedin.com
135,108 employees on LinkedIn®
(128)4.5 out of 5
6th Easiest To Use in Predictive Analytics software
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    LeanDNA software enables discrete manufacturing operational teams to predictively balance supply and demand by synchronizing procurement and production to ensure on-time delivery, reduce inventory was

    Users
    • Approvisionneur
    Industries
    • Manufacturing
    • Aviation & Aerospace
    Market Segment
    • 51% Mid-Market
    • 38% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • LeanDNA Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    33
    Customer Support
    22
    Inventory Management
    20
    Features
    16
    Time-saving
    13
    Cons
    Complex Usability
    10
    Limited Customization
    7
    Missing Features
    6
    Data Inaccuracy
    5
    Learning Curve
    5
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • LeanDNA features and usability ratings that predict user satisfaction
    9.0
    Has the product been a good partner in doing business?
    Average: 9.1
    6.3
    AI Text Summarization
    Average: 8.1
    7.6
    Algorithms
    Average: 8.5
    6.2
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    LeanDNA
    Company Website
    Year Founded
    2014
    HQ Location
    Austin, Texas, United States
    LinkedIn® Page
    www.linkedin.com
    100 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

LeanDNA software enables discrete manufacturing operational teams to predictively balance supply and demand by synchronizing procurement and production to ensure on-time delivery, reduce inventory was

Users
  • Approvisionneur
Industries
  • Manufacturing
  • Aviation & Aerospace
Market Segment
  • 51% Mid-Market
  • 38% Enterprise
LeanDNA Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
33
Customer Support
22
Inventory Management
20
Features
16
Time-saving
13
Cons
Complex Usability
10
Limited Customization
7
Missing Features
6
Data Inaccuracy
5
Learning Curve
5
LeanDNA features and usability ratings that predict user satisfaction
9.0
Has the product been a good partner in doing business?
Average: 9.1
6.3
AI Text Summarization
Average: 8.1
7.6
Algorithms
Average: 8.5
6.2
AI Text Generation
Average: 8.1
Seller Details
Seller
LeanDNA
Company Website
Year Founded
2014
HQ Location
Austin, Texas, United States
LinkedIn® Page
www.linkedin.com
100 employees on LinkedIn®
(570)4.3 out of 5
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    SAP HANA Cloud is a modern database-as-a-service (DBaaS) powering the next generation of intelligent data applications. SAP HANA Cloud offers a competitive edge by incorporating advanced machine learn

    Users
    • Consultant
    • SAP Consultant
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 62% Enterprise
    • 25% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • SAP HANA Cloud is a cloud platform designed for storing and working with large amounts of data, offering real-time data processing and analytics capabilities.
    • Reviewers appreciate the platform's speed, scalability, seamless integration with other SAP tools, and its ability to handle large volumes of data efficiently.
    • Reviewers noted that SAP HANA Cloud can be complex to set up, particularly for new users, and its cost can be high, especially when scaling up.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • SAP HANA Cloud Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    40
    Easy Integrations
    33
    Integrations
    31
    Scalability
    25
    Speed
    25
    Cons
    Expensive
    25
    Learning Curve
    25
    Complexity
    24
    Difficult Learning
    21
    Learning Difficulty
    16
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • SAP HANA Cloud features and usability ratings that predict user satisfaction
    8.5
    Has the product been a good partner in doing business?
    Average: 9.1
    7.2
    AI Text Summarization
    Average: 8.1
    8.8
    Algorithms
    Average: 8.5
    6.9
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    SAP
    Company Website
    Year Founded
    1972
    HQ Location
    Walldorf
    Twitter
    @SAP
    297,327 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    135,108 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

SAP HANA Cloud is a modern database-as-a-service (DBaaS) powering the next generation of intelligent data applications. SAP HANA Cloud offers a competitive edge by incorporating advanced machine learn

Users
  • Consultant
  • SAP Consultant
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 62% Enterprise
  • 25% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • SAP HANA Cloud is a cloud platform designed for storing and working with large amounts of data, offering real-time data processing and analytics capabilities.
  • Reviewers appreciate the platform's speed, scalability, seamless integration with other SAP tools, and its ability to handle large volumes of data efficiently.
  • Reviewers noted that SAP HANA Cloud can be complex to set up, particularly for new users, and its cost can be high, especially when scaling up.
SAP HANA Cloud Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
40
Easy Integrations
33
Integrations
31
Scalability
25
Speed
25
Cons
Expensive
25
Learning Curve
25
Complexity
24
Difficult Learning
21
Learning Difficulty
16
SAP HANA Cloud features and usability ratings that predict user satisfaction
8.5
Has the product been a good partner in doing business?
Average: 9.1
7.2
AI Text Summarization
Average: 8.1
8.8
Algorithms
Average: 8.5
6.9
AI Text Generation
Average: 8.1
Seller Details
Seller
SAP
Company Website
Year Founded
1972
HQ Location
Walldorf
Twitter
@SAP
297,327 Twitter followers
LinkedIn® Page
www.linkedin.com
135,108 employees on LinkedIn®
(39)4.9 out of 5
1st Easiest To Use in Predictive Analytics software
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  • Overview
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  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    TimeGPT is a cutting-edge foundation model specifically designed for time series forecasting and anomaly detection. This innovative solution empowers users to harness the full potential of their time

    Users
    • Data Scientist
    Industries
    • Computer Software
    • Retail
    Market Segment
    • 56% Enterprise
    • 23% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Nixtla Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    26
    Easy Integrations
    15
    Customer Support
    14
    Machine Learning
    13
    Implementation Ease
    12
    Cons
    Missing Features
    6
    Lack of Guidance
    5
    Limited Features
    5
    Learning Curve
    3
    Learning Difficulty
    3
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Nixtla features and usability ratings that predict user satisfaction
    9.4
    Has the product been a good partner in doing business?
    Average: 9.1
    4.3
    AI Text Summarization
    Average: 8.1
    9.6
    Algorithms
    Average: 8.5
    4.6
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Nixtla
    Company Website
    Year Founded
    2021
    HQ Location
    San Francisco, US
    LinkedIn® Page
    www.linkedin.com
    27 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

TimeGPT is a cutting-edge foundation model specifically designed for time series forecasting and anomaly detection. This innovative solution empowers users to harness the full potential of their time

Users
  • Data Scientist
Industries
  • Computer Software
  • Retail
Market Segment
  • 56% Enterprise
  • 23% Mid-Market
Nixtla Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
26
Easy Integrations
15
Customer Support
14
Machine Learning
13
Implementation Ease
12
Cons
Missing Features
6
Lack of Guidance
5
Limited Features
5
Learning Curve
3
Learning Difficulty
3
Nixtla features and usability ratings that predict user satisfaction
9.4
Has the product been a good partner in doing business?
Average: 9.1
4.3
AI Text Summarization
Average: 8.1
9.6
Algorithms
Average: 8.5
4.6
AI Text Generation
Average: 8.1
Seller Details
Seller
Nixtla
Company Website
Year Founded
2021
HQ Location
San Francisco, US
LinkedIn® Page
www.linkedin.com
27 employees on LinkedIn®
(664)4.6 out of 5
Optimized for quick response
10th Easiest To Use in Predictive Analytics software
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Entry Level Price:$3,000.00
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Alteryx, through it's Alteryx One platform, helps enterprises transform complex, disconnected data into a clean, AI-ready state. Whether you’re creating financial forecasts, analyzing supplier perf

    Users
    • Data Analyst
    • Consultant
    Industries
    • Financial Services
    • Accounting
    Market Segment
    • 63% Enterprise
    • 22% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • Alteryx is a software that allows users to prepare, blend, and analyze data without writing code, featuring a drag-and-drop interface and automation capabilities.
    • Reviewers like the ease of use, the ability to handle large databases, the drag-and-drop workflow builder, and the ability to connect multiple data sources and automate tasks.
    • Users mentioned high licensing costs, limited data visualization capabilities, a steep learning curve for advanced tools, and performance issues with large datasets.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Alteryx Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    324
    Automation
    140
    Intuitive
    130
    Easy Learning
    101
    Problem Solving
    101
    Cons
    Expensive
    86
    Learning Curve
    80
    Missing Features
    61
    Learning Difficulty
    54
    Slow Performance
    40
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Alteryx features and usability ratings that predict user satisfaction
    8.9
    Has the product been a good partner in doing business?
    Average: 9.1
    7.4
    AI Text Summarization
    Average: 8.1
    8.3
    Algorithms
    Average: 8.5
    7.2
    AI Text Generation
    Average: 8.1
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Alteryx
    Company Website
    Year Founded
    1997
    HQ Location
    Irvine, CA
    Twitter
    @alteryx
    26,382 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    2,265 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Alteryx, through it's Alteryx One platform, helps enterprises transform complex, disconnected data into a clean, AI-ready state. Whether you’re creating financial forecasts, analyzing supplier perf

Users
  • Data Analyst
  • Consultant
Industries
  • Financial Services
  • Accounting
Market Segment
  • 63% Enterprise
  • 22% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • Alteryx is a software that allows users to prepare, blend, and analyze data without writing code, featuring a drag-and-drop interface and automation capabilities.
  • Reviewers like the ease of use, the ability to handle large databases, the drag-and-drop workflow builder, and the ability to connect multiple data sources and automate tasks.
  • Users mentioned high licensing costs, limited data visualization capabilities, a steep learning curve for advanced tools, and performance issues with large datasets.
Alteryx Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
324
Automation
140
Intuitive
130
Easy Learning
101
Problem Solving
101
Cons
Expensive
86
Learning Curve
80
Missing Features
61
Learning Difficulty
54
Slow Performance
40
Alteryx features and usability ratings that predict user satisfaction
8.9
Has the product been a good partner in doing business?
Average: 9.1
7.4
AI Text Summarization
Average: 8.1
8.3
Algorithms
Average: 8.5
7.2
AI Text Generation
Average: 8.1
Seller Details
Seller
Alteryx
Company Website
Year Founded
1997
HQ Location
Irvine, CA
Twitter
@alteryx
26,382 Twitter followers
LinkedIn® Page
www.linkedin.com
2,265 employees on LinkedIn®

Learn More About Predictive Analytics Software

What are predictive analytics tools and software?

Predictive analytics software is all about making business outcomes predictable. Data scientists and data analysts can do this by using data mining and predictive modeling to analyze historical data. By better understanding the past, businesses can gain insights into the future. Predictive analytics is a step further than general business intelligence, which companies use to pull actionable insights from their data sets. Instead, users can develop machine learning algorithms and predictive models to help forecast and achieve business-critical numbers.

The reason businesses can hit those critical numbers and become more predictive is due to the boom of big data. Companies can harness their data like never before. By recording and owning more and more historical and real-time data, data scientists have larger sample sizes to work with, meaning they can be much more accurate. Additionally, companies investing in predictive analytics without ensuring that their data is accurate, clean, and accessible will ultimately be wasting their time. However, those who can wrangle their data properly will create a significant competitive edge and hold an advantage in the market.

Benefits of using predictive analytics tools

  • Accurately predict and forecast revenue numbers based on a wide range of variables
  • Understand and account for customer churn and retention
  • Predict employee churn based on historical factors for turnover
  • Make more precise, data-driven decisions in all departments based on available data
  • Determine both risks and opportunities that were otherwise hidden within company data

Why use predictive analytics solutions?

There are a number of applications for predictive analytics software and reasons businesses should adopt them, but they all boil down to understanding what has happened in the past, what could happen in the future, and what should be done to ensure positive business outcomes. These are considered descriptive analytics, predictive analytics, and prescriptive analytics.

Descriptive Analytics (understanding the past) — Descriptive analytics deals with understanding what has happened in the past and how it has influenced where a business is in the present. This means undergoing data mining on a company’s historical data. This type of analysis can be obtained by using business intelligence tools, big data analytics, or time-series data. Regardless of how it is attained, providing descriptive analytics is a key foundation of predictive analytics and creating data-driven decision-making processes. It requires thorough data preparation and organizing the data for easy descriptive analysis.

Predictive Analytics (knowing what is possible) — Predictive analytics allows users and businesses to know and anticipate potential outcomes. Building predictive models based on descriptive analysis can ensure that businesses do not make the same mistake twice. It can also provide more accurate forecasting and planning, which helps to optimize efficiency. Ultimately, this analysis makes the unknown known.

Prescriptive Analytics (so now what?) — The final step and ultimate reason for using predictive analytics tools is to make clear actions based on the suggestions and recommendations of the predictive models. This is where machine learning and deep learning functionality come into play. Some predictive analytics solutions can provide actionable insights without human intervention. For example, it can provide a short list of sales accounts that should close quickly based on several variables. Becoming prescriptive takes analytics a step further and is the ultimate reason for adopting advanced, predictive analytics.

Who uses predictive analytics platforms?

To fully take advantage of predictive analytics platforms, businesses need to hire highly skilled data scientists with knowledge in machine learning development and predictive modeling. These skilled workers are not abundant, so they are often paid very well. Dedicating financial resources to these positions may not be an option for every company, but those who can afford data scientists have a leg up on the competition.

While data scientists or data analysts are the employees tasked with using predictive analytics software, there are many industries and departments that can be impacted by using predictive analytics:

Manufacturing and Supply Chain—One area that can be greatly enhanced by using predictive analysis is demand planning for manufacturing companies. With more accurate forecasting, businesses can avoid risks like shortages and surpluses. Additionally, companies can become predictive about quality management and production issues. By analyzing what has caused production failures in the past, companies can anticipate and avoid production breakdowns in the future.

Distribution is another major aspect of the supply chain that can be further optimized with predictive modeling. By better estimating where goods will need to be delivered and the risks that may hold up distribution modes, businesses can provide better service and more efficiently deliver their products to customers. Taking into account historical data, such as weather, traffic, and accident records, shipping can become a more precise science.

Retail — Retail is another industry that is ripe for optimization with the help of predictive analytics. Retail predictive analytics can provide businesses with insights on everything from pricing optimization to understanding how shoppers navigate brick-and-mortar stores for better in-store organization of merchandise. E-commerce businesses can track these factors in a much more efficient manner. All e-commerce interactions can be recorded into a database and influenced by predictive models. This is one of the main reasons Amazon has been so successful and disruptive to brick-and-mortar retailers. Every decision can be made predictive with the help of data.

Marketing and Sales — Being able to predict the actions of customers and prospects is an invaluable service for any business. Marketing teams can leverage predictive analytics software to project how marketing campaigns may perform, which segment of prospects to target with ads, and the potential conversion rates of each campaign. Understanding how these efforts impact the bottom line is critical to the success of marketing teams and translates into a much more efficient and productive sales team. At the same time, sales teams can leverage predictive modeling in such areas as lead scoring, determining which accounts to target first because they have a higher chance of closing. Ensuring that sales representatives are working smarter instead of harder means more revenue. A few CRM and marketing automation solutions provide some level of predictive functionality, but data scientists can separately funnel that data into dedicated predictive analytics tools to find cross-departmental correlations.

Financial Services—The banking industry has long been ripe for disruption, but financial administrations are using predictive analytics solutions to better predict risk. Historical data can power predictive analytics software to predict fraudulent transactions and determine credit risks, among other functions.

Types of predictive analytics software

Predictive modeling is a complex science that requires years of training to understand. There is a reason data scientists are in high demand: not many people have a complete grasp of how to build predictive models. There are two main types of predictive models: classification and regression models.

Classification Models—Simply put, classification puts a piece of data into a bucket or a class and labels it as such. Classification models essentially label data based on what an algorithm has already learned. The ultimate goal of classification models is to accurately bucket new data points into the proper classes so that the data can become predictive and prescriptive.

Regression Models—Regression models analyze the relationship between two separate data points and help forecast what happens when they are placed side by side. For example, in baseball, teams may perform a regression analysis on the relationship between the number of fastballs thrown and the number of home runs hit.

Decision Trees — One common type of classification model is a decision tree. These models predict several possible outcomes based on a variety of inputs. For example, if a sales team builds $1 million in a pipeline, they can close $100,000 in revenue, but if they create $10 million in a pipeline, they should be able to close $1 million in revenue.

Neural Networks—Neural networks, known in the AI world as artificial neural networks, are extremely complex predictive models. These models can predict and analyze unstructured, nonlinear relationships between data points. These solutions provide pattern recognition and can help track anomalies. Artificial neural networks were originally created and built to mimic the synapses and neural aspects of the human brain. They are one of the contributing factors to the accelerated growth in artificial intelligence and deep learning.

Other types of predictive modeling include Bayesian analysis, memory-based reasoning, k-nearest neighbor, support vector machines, and time-series data mining.

Potential issues with predictive analytics software solutions

Lack of Skilled Employees—The main issue with adopting predictive analytics software is the need for a skilled data scientist to interact with the data and build the models. There is a distinct skill gap in terms of finding users who understand how to pull data and build models and the implications that the data has on the overall business. For this reason, data scientists are in very high demand and, thus, expensive.

Data Organization—Many companies face the challenge of organizing data so that it can be easily accessed. Harnessing big data sets that contain historical and real-time data is not easy in today's world. Companies often need to build a data warehouse or a data lake that can combine all the disparate data sources for easy access. This, again, requires highly knowledgeable employees.