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Migrating multi-model AI agents to Amazon Bedrock AgentCore runtime

Favorite Organizations building multi-model agentic AI applications face growing infrastructure complexity. Managing container orchestration, scaling policies, identity, and observability for multiple model types adds operational overhead. Teams often spend more time on infrastructure than on agent logic development. Developers running agentic frameworks on self-managed infrastructure such as Amazon Elastic Container

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Shared by AWS Machine Learning September 19, 2026

Introducing Kimi K3 on Amazon Bedrock

Favorite Open-weight models are changing the economics of building and deploying AI at scale. Rapid gains in intelligence and efficiency mean companies can match each workload with the right balance of capability, speed, and cost. AWS is building for a future in which organizations can adopt open-weight innovation with the

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Shared by AWS Machine Learning September 19, 2026

A serverless, data-driven Git metrics dashboard using Amazon Quick Sight

Favorite Git activity is one of the richest signals engineering teams produce that can provide continuous observability into development analytics. The challenge is extracting these Git metrics at scale, which has traditionally required hand-rolled extract, transform, and load (ETL) jobs, dedicated infrastructure, and ongoing maintenance. Further, with modern development tools

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Shared by AWS Machine Learning September 18, 2026