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AWS Lambda can now reference deployment packages directly from your S3 bucket

AWS has added a `REFERENCE` mode for Lambda deployment packages. It eliminates duplicate managed copies, raises the default managed-storage quota to 300GB, and gives teams direct control over encryption, lifecycle and audit policy—but a deleted or inaccessible source object can now make a function inactive.

GitLab 19.3 turns plain-English process knowledge into runnable agentic flows

Custom Flows became generally available in GitLab 19.2; 19.3 adds the missing authoring layer. Flow Creator reads current Flow Registry docs, applies known failure rules and generates a runnable flow from plain English. Builders still need to review, register and govern the automation rather than treating generated YAML as trusted infrastructure.

GitHub Enterprise Server 3.22 brings Copilot CLI into disconnected and air-gapped environments

The technical-preview feature separates Copilot CLI from GitHub Cloud for core coding, shell and repository workflows, giving regulated and isolated environments a supported agent path while leaving cloud-dependent capabilities such as GitHub-hosted model selection and web search unavailable.

X has replaced Creator Revenue Sharing with Original Content Rewards — and U.S. payouts now require X Money

X’s replacement creator program is now live enough to expose a new dependency: U.S. creators must route Original Content Rewards payouts through X Money, and one X Money account can connect to only one X account. Eligibility and qualified-impression rules remain unchanged.

Kubernetes 1.37 moves more cluster operations into the core platform

The release consolidates several recurring cluster-management jobs into core APIs and controllers. HPA scale-to-zero is now default-on Beta, storage-version migration and Pod Certificates are Stable, DRA can satisfy existing extended-resource requests, and large etcd reads gain a streaming path that reduces peak memory pressure.

GPT-6 Astra reaches broad API rollout with 1.05M context, concrete pricing and stronger agent continuity

Astra's adoption question is no longer only when access arrives. Builders can now model its cost and context limits, while agent orchestration has a sharper operational boundary: ChatGPT and Codex can pause for review, but OpenAI says an interrupted API task stops. Codex is also experimenting with persistent notes and searchable prior context windows for longer-running work.

Microsoft Project Zenith turns 64GB-class Windows PCs into a standardized local-AI developer tier

Project Zenith is not a new model or another Copilot feature. It standardizes a developer-focused Windows experience and hardware floor for local AI work, with preconfigured tooling and OS settings intended to reduce setup friction and dependence on metered cloud inference.

Funes gives coding agents a local memory that can follow you across tools and machines

Funes treats agent memory as user-owned data rather than a hosted account feature: retrieval and reranking run locally, provenance stays attached to recalled passages, and cross-machine sharing is optional. The main risk is that publishing session-derived memory can still expose secrets if redaction misses them.

Meta’s approved U.S. teen settlement makes daily limits and nighttime blocks default on Instagram and Facebook

The settlement has crossed from proposed agreement to approved operating constraint. Meta now says the two-hour limit counts activity across Facebook, Instagram and detected multiple accounts, while teens also gain controls for non-algorithmic feeds and autoplay; most terms are required to remain in place for ten years.

Cloudflare raises the stateful Dynamic Worker concurrency ceiling from four to ten

The new 10-worker ceiling is a niche but concrete scaling change for platforms using Cloudflare Dynamic Workers as agent code sandboxes, generated-app runtimes or multi-tenant automation workers. Ordinary Worker requests remain capped at four distinct Dynamic Workers in flight.

Google DeepMind is piloting double-blind frontier-model evaluations with confidential computing

The pilot attacks a persistent evaluation trade-off: labs do not want to reveal frontier-model internals, while evaluators do not want benchmark prompts leaking back to the model provider. DeepMind says a Singapore AI Safety Institute pilot kept both sides’ sensitive assets hidden during execution.