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WordPress Studio is making an agentic build loop the default desktop experience

Studio Code was already available in WordPress Studio, but the August 24 redesign changes the default workflow: the coding agent now sits at the center of the desktop app beside a live local WordPress preview, with point-and-annotate feedback and one-click hosting sync. The beta also ends the earlier unlimited-free framing by introducing a credit limit and paid top-ups.

Safari 27 gives coding agents a local MCP path into live browser debugging

WebKit’s Safari MCP server turns browser debugging into an agent-callable interface. It runs locally and makes no network calls itself, but captured page data is sent directly to the connected agent, so browser-session trust and model data handling become part of the development security model.

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.

Amazon Aurora Serverless gets faster burst scaling

Aurora Serverless can now add roughly 12 ACUs in the first second of a scale-up event on platform versions 3 and 4. The change is automatic and is most useful for bursty SaaS, API, batch and agent workloads, but it does not remove the separate resume delay when a database has scaled all the way to zero.

Homebrew 7.0 turns package vulnerability checks into a built-in workflow — after closing a sudo-capable cask flaw

The practical change is bigger than another package-manager version. Homebrew can now tell operators whether vulnerabilities are actually outstanding in the formula revisions they installed, while its own recent advisories show why package-manager metadata, uninstall paths and build isolation deserve the same scrutiny as package contents.

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.