Apples Siri gets a huge AI rework this year, biggest rework ever. The summary tl;dr •Apple is rebuilding Siri into a system-wide AI agent, not just a voice assistant •iOS 27 introduces a conversational, chat-like Siri (text + voice) •New standalone Siri app with chat
AGENTS
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SambaNova Community: Build Next-Gen AI Apps Faster
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Innovate faster with the SambaNova Community Join devs worldwide building next-gen apps & agents with fast inference & top open-source models on SambaCloud. https://
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Code organization and AI agent development methodologies evolution
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Oui d'ailleurs la manière dont @bcherny avait détaillé son process de code avec sa stack était déja une organisation à la clawd avant que la vague n'arrive. Et c'était aussi le principe de babyagi il y a un peu plus longtemps.
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Code Validation Tools Essential for AI Coding Agents
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As always though the trick is to arm them with a good coding agent harness and the right collection of tools – compilers and debuggers and linters and fuzzers and suchlike I don't trust any code produced by a model directly until I've seen the model run it
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Claude Code Auto Mode: Daily Feature Releases Continue
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This is insane. They literally drop every freaking day. Today: Claude code auto mode. Permission decisions on your behalf.
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AI Agents Transform SaaS User Base Growth
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it's so funny to see investors bearish on SaaS stocks SaaS stocks will be back in a year when people realize AI actually 10x's their user base users are agents, not just humans. act accordingly!
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LangSmith for Startups Office Hours in San Francisco
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San Francisco LangSmith for Startups Office Hours Calling founders, engineers, and founding teams to join us on a Friday morning for office hours. Come ask our Head of Product, PMs and Deployed Engineers your burning agent development questions + get updates + give us your
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Claude Desktop improvements but not fully automated assistant yet
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There are some improvements over what Claude Desktop was capable before, but still a far cry from fully automated desktop assistant.
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Auto-Research for Data: The Underrated ML Game Changer
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Auto-research for ML training models is all the rage now, but underrated is: auto-research for data! Sure, you can squeeze out a bit of model performance by optimizing hyperparameters, but code agents can do data work that has been very labour intensive and required a lot of attention to a lot details effortlessly: > download data from many different data sources > bring all the data sources into uniform format > do detailed EDA: find patterns and outliers > look at 100s of samples and take detailed notes > make beautiful infographics rather than mpl plots > iterate on data filtering by looking at more samples > make a simple pipelines robust and scalable It's now possible to write data pipelines for dozens of data sources in hours that would have taken weeks of reading many docs, debugging APIs and data formats, wrangling outliers and missing data. A few weeks ago we gave Claude access to the CPU partition of our cluster and it iteratively refined filters to retrieve a domain subset of FineWeb. This would have taken me 2-3 days to work through while it took Claude just a few hours with almost no babysitting and with a nice logbook. Thus the long tail of small, niche data sources becomes more accessible and can be aggregated to even larger high quality datasets for cool applications. Data has been fuelling LLM progress more than model architecture innovations, so I am very excited about this!
→ View original post on X — @thom_wolf, 2026-03-24 17:04 UTC