Doesn't work though… one error almost immediately, another two when you try to close. Never shows the app nor its content.
SOFTWARE
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Instant 1.0 Announced: Best Backend for AI-Coded Apps
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After 4 years, we’re announcing Instant 1.0.
— Stopa (@stopachka) 9 avril 2026
Instant is the best backend for AI-coded apps.
Let us tell you why. pic.twitter.com/jD944U7lAlAfter 4 years, we’re announcing Instant 1.0. Instant is the best backend for AI-coded apps. Let us tell you why.
→ View original post on X — @scobleizer, 2026-04-09 18:25 UTC
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Codex Pro Plan Launched at $100 with Generous Limits
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Many of you have been asking for this: say hello to the $100 Codex Pro plan! It comes with very generous limits. Go build something ambitious!
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AI Workflow for Building VR on the Web Without Code
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We shipped a fully integrated AI workflow for building VR on the web.
— Meta Horizon Developers (@MetaHorizonDevs) 9 avril 2026
Just describe what you want. AI builds it, tests it, and fixes bugs without you touching the code.
Try it yourself here 👉 https://t.co/wMkVEjWT6V
Discover how it works 🧵👇 pic.twitter.com/GYHZqtk6LdWe shipped a fully integrated AI workflow for building VR on the web. Just describe what you want. AI builds it, tests it, and fixes bugs without you touching the code. Try it yourself here 👉 bit.ly/4czvxUT Discover how it works 🧵👇
→ View original post on X — @scobleizer, 2026-04-09 17:51 UTC
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Prefab MCP UI not rendering in Cursor FastMCP server
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I'm not having any luck getting a Prefab MCP app UI show up in Cursor through a FastMCP server – it just shows "[Rendered Prefab UI]" in the tool call result. Is this something your team has validated working? Any minimal working examples?
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RAG is an Ecosystem: Building Modular Production-Grade Systems
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This is one of the cleanest visual summaries of a production-grade RAG (Retrieval-Augmented Generation) stack I’ve seen. What it highlights clearly is an often-ignored reality: RAG is not a single tool — it’s an ecosystem. A solid RAG system spans multiple, interchangeable layers: LLMs (open & closed): Llama, Mistral, Qwen, DeepSeek, OpenAI, Claude, Gemini Frameworks: LangChain, LlamaIndex, Haystack — orchestration is the real differentiator Vector databases: Chroma, Pinecone, Qdrant, Weaviate, Milvus Data extraction: Web crawling, document parsing, structured ingestion Embeddings: Open (BGE, SBERT, Nomic) vs proprietary (OpenAI, Cohere, Google) Evaluation: RAGAS, TruLens, Giskard — because “it sounds right” is not a metric Key takeaway for leaders and builders: RAG success is less about which model you choose and more about: data quality retrieval strategy chunking & indexing evaluation loops cost / latency trade-offs This is why mature AI teams design modular stacks, not one-vendor pipelines. RAG is no longer experimental. It’s becoming foundational infrastructure for enterprise AI. #RAG #AgenticAI #EnterpriseAI #LLMs #AIArchitecture #GenAI #DataEngineering X (Twitter) RAG isn’t a tool. It’s a stack. LLMs Frameworks Vector DBs Embeddings Extraction Evaluation Winning teams design modular RAG systems — not single-vendor pipelines. This is how enterprise AI actually scales.
→ View original post on X — @ingliguori, 2026-04-09 17:25 UTC
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Mastra Platform Launch: Studio, Server, and Memory Gateway Tools
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Today, we’re launching the Mastra platform with tools to run your agents effectively at scale: • Mastra Studio: evals, logs, traces, datasets, metrics • Mastra Server: deploy agents + workflows • Memory Gateway: SoTA agent memory
→ View original post on X — @scobleizer, 2026-04-09 17:00 UTC
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Alteryx One AWS enables governed cloud data access faster decisions
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You’ve invested in @awscloud for a reason—but if answers still require tickets or handoffs, value stalls. Alteryx One on AWS gives teams direct, governed access to cloud data. No heavy lift. Just faster decisions. Start free: https://t.co/ICvrORx1Ej pic.twitter.com/WOV7gDW6Ls
— Alteryx (@alteryx) 9 avril 2026You’ve invested in @awscloud for a reason—but if answers still require tickets or handoffs, value stalls. Alteryx One on AWS gives teams direct, governed access to cloud data. No heavy lift. Just faster decisions. Start free: https://
ow.ly/IkVs50YGF9u -
Deployment Options: On-Premise, On-Device, VPC, Cloud API
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To recap: On-Premise: your data center, Confidential Computing infrastructure with GPUs required. On-Device: your hardware, fully offline, built for edge. VPC (AWS/GCP): all models and ElevenAgents, your cloud boundary, data stays in your environment. Cloud API: all models
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On-Premise and On-Device AI Access Launches Mid-2026
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On-Premise and On-Device are in early access, with initial releases expected in the first half of 2026. VPC deployments are available now. Join the waitlist: