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Amazon Web Services (AWS)

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18,237 reviews
  • 444 profiles
  • 222 categories
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4.4
#1 in 36 categories
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Serving customers since
2006
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VGG 13-BN

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This is a Image Classification model from PyTorch Hub

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Faster R-CNN Resnet-152 V1 1024x1024

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This is a Object Detection Answering model from TensorFlow Hub

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Faster R-CNN Resnet V2 1024x1024

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This is a Object Detection Answering model from TensorFlow Hub

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EfficientNet B4 Lite

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This is a Image Classification model from TensorFlow Hub

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BERT Large Uncased Whole Word Masking

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This is a Sentence Pair Classification model built upon a Text Embedding model from TensorFlow Hub

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EfficientNet B2 Lite

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This is a Image Classification model from TensorFlow Hub

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NVIDIA Run:ai

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NVIDIA Run:ai is a Kubernetes-native platform designed to orchestrate AI workloads and optimize GPU resources. Tailored for machine learning and AI teams, it streamlines resource management, enhances GPU utilization, and accelerates development cycles. By dynamically allocating GPU resources and integrating seamlessly with leading MLOps tools and cloud environments, Run:ai ensures efficient and scalable AI operations. Key Features and Functionality: - Dynamic GPU Scheduling: Automatically allocates GPU resources based on workload demands, ensuring optimal utilization and minimizing idle time. - Fractional GPU Allocation: Enables multiple workloads to share a single GPU, allowing for efficient resource distribution and cost savings. - Automated Workload Orchestration: Manages the deployment and scaling of AI workloads, simplifying complex processes and reducing manual intervention. - Team-Based Resource Governance: Implements role-based access control and team-level quotas to ensure resource isolation, compliance, and visibility across AI teams. - Seamless Integration with AWS Services: Deploys alongside Amazon EKS and integrates with services like Amazon S3, CloudWatch, and IAM for a unified operational experience. - MLOps Workflow Compatibility: Supports tools such as JupyterHub, Kubeflow, and MLflow, facilitating end-to-end machine learning pipelines. Primary Value and Problem Solved: NVIDIA Run:ai addresses the challenge of efficiently managing and scaling AI workloads by optimizing GPU resource utilization. It eliminates the inefficiencies of static GPU allocation through dynamic scheduling and fractional sharing, leading to higher throughput and faster model development. By providing a centralized platform for resource management, Run:ai empowers organizations to accelerate AI initiatives, reduce operational costs, and maintain tight control over infrastructure, thereby driving innovation without the complexities of manual resource management.

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Microsoft Windows Server 2019 with NVIDIA GRID Driver Gaming Services

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Microsoft Windows Server 2019 with NVIDIA GRID Driver is a robust Amazon Machine Image (AMI) designed to deliver high-performance computing environments on Amazon EC2 instances. This AMI integrates Windows Server 2019 with NVIDIA GRID drivers, enabling support for up to four 4K monitors, hardware encoding for up to 10 H.265 (HEVC 1080p30 streams, and up to 18 H.264 1080p30 streams per GPU. This configuration is ideal for applications requiring intensive graphics processing, such as 3D rendering, video encoding, and virtual reality. Key Features and Functionality: - High-Resolution Multi-Monitor Support: Supports up to four monitors with resolutions up to 4K (4096x2160, enhancing visual workspace for complex tasks. - Advanced Video Encoding: Provides hardware encoding capabilities for up to 10 H.265 (HEVC 1080p30 streams and up to 18 H.264 1080p30 streams per GPU, facilitating efficient video processing and improved image quality. - Seamless AWS Integration: Offers compatibility with AWS services like Amazon Elastic Block Store (EBS, Amazon CloudWatch, Elastic Load Balancing, and Elastic IPs, ensuring a cohesive cloud computing experience. Primary Value and User Solutions: This AMI addresses the needs of professionals and organizations requiring powerful, scalable, and secure environments for graphics-intensive applications. By leveraging NVIDIA GRID technology on Windows Server 2019 within the AWS ecosystem, users can achieve enhanced performance for tasks such as 3D visualization, video encoding, and virtual reality development. The integration with AWS services ensures scalability and reliability, allowing users to efficiently manage and deploy their applications in the cloud.

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XLM MLM English-German

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This is a Sentence Pair Classification model built upon a Text Embedding model from PyTorch Hub

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Amazon Web Services (AWS) Reviews

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Profile Name
Star Rating
11943
5314
729
146
96
Atharva P.
AP
Atharva P.
Cloud BI Engineer at ZS | Ex-Cognizant
07/30/2026
Validated Reviewer
Verified Current User
Review source: G2 invite
Incentivized Review

Secure, Fast Large-Scale Data Migration with AWS Snowball

AWS Snowball provides a secure and efficient solution for transferring large datasets into and out of AWS when network-based transfers are impractical. I particularly like its rugged hardware, built-in encryption, tamper-resistant design, automatic import process, and straightforward job management through the AWS Console. The appliance is easy to configure, and the associated client software provides a simple user experience for copying large volumes of data. Performance is significantly better than transferring hundreds of terabytes over standard internet connections. The pricing is cost-effective for one-time migrations because it dramatically reduces migration timelines while avoiding prolonged network utilization. Snowball Edge also supports local compute capabilities, allowing preprocessing before data is transferred into AWS. Although Snowball itself does not provide AI functionality, it is commonly used to migrate large training datasets into Amazon S3 for downstream analytics, SageMaker AI, and Amazon Bedrock workloads.
Atharva P.
AP
Atharva P.
Cloud BI Engineer at ZS | Ex-Cognizant
07/30/2026
Validated Reviewer
Verified Current User
Review source: G2 invite
Incentivized Review

AWS CodePipeline: Reliable, Scalable CI/CD with Seamless AWS Integrations

AWS CodePipeline has become the backbone of our CI/CD workflows for infrastructure and application deployments. I particularly like its visual pipeline interface, native AWS integrations, approval gates, parallel stages, event-driven execution, and automatic deployment orchestration. The UI makes it easy to monitor deployment progress while CloudWatch provides detailed execution logs for troubleshooting. The service integrates exceptionally well with CodeBuild, CodeDeploy, CloudFormation, ECS, EKS, Lambda, and third-party Git repositories such as GitHub. Pipeline execution is reliable and scales automatically without requiring dedicated build infrastructure. Pricing is predictable because pipelines are managed by AWS, eliminating the operational overhead of maintaining self-hosted CI/CD platforms. More recently, Amazon Q has also helped accelerate pipeline development by generating CloudFormation templates, IAM policies, and deployment scripts.
Atharva P.
AP
Atharva P.
Cloud BI Engineer at ZS | Ex-Cognizant
07/30/2026
Validated Reviewer
Verified Current User
Review source: G2 invite
Incentivized Review

Straightforward Access to Always-Up-to-Date AWS Compliance Reports

AWS Artifact has become our primary source for accessing AWS compliance reports, certifications, and regulatory documentation. The interface is straightforward and makes it easy to download SOC reports, ISO certifications, PCI DSS documentation, GDPR resources, and other compliance artifacts without opening AWS Support cases. The document organization is intuitive, making it easy for security and audit teams to quickly locate the required reports. The service integrates naturally into AWS governance processes alongside AWS Audit Manager, Security Hub, IAM Identity Center, and Organizations. Since the documents are always maintained by AWS, we no longer need to manually request updated compliance evidence during customer audits. Performance is excellent because reports are available immediately, and the service is included with AWS at no additional cost, providing excellent ROI by reducing audit preparation effort. Although AWS Artifact does not include AI capabilities, its documentation is frequently used alongside Amazon Q and Bedrock to help summarize compliance requirements and internal governance documentation.

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What is Amazon Web Services (AWS)?

Amazon Web Services (AWS), a subsidiary of Amazon, is a leading cloud computing platform that provides a wide range of on-demand services such as computing power, data storage, databases, networking, and artificial intelligence tools. It enables businesses to build, deploy, and scale applications without investing in physical infrastructure, using a flexible pay-as-you-go pricing model. With a global network of data centers, AWS supports organizations of all sizes—from startups to large enterprises—by offering reliable, secure, and highly scalable solutions for modern digital operations.

Details

Year Founded
2006
Ownership
NASDAQ: AMZN
Website
aws.amazon.com