Our existing $200 Pro tier still remains our highest usage option. And as a thank you to our existing Pro users on the $200 tier, we’re extending our 2x Codex usage promo (until May 31st) and we’ve reset your Codex rate limits (yes, again).
SOFTWARE
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OpenAI Adjusts Codex Usage Limits for Plus Subscribers
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The Codex promotion for existing Plus subscribers ends today and as a part of this, we’re rebalancing Codex usage in Plus to support more sessions throughout the week, rather than longer sessions in a single day. The Plus plan will continue to be the best offer at $20 for
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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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Engramme’s Memory API Launched in Beta
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Engramme's memory API is now live in public beta and built on an entirely new AI architecture, not Transformers, purpose-built to give apps persistent human memory without any search or prompting from the user.
— 🚨 AI News | TestingCatalog (@testingcatalog) 9 avril 2026
Engramme uses Large Memory Models, promising near-zero… https://t.co/M0Wpgav6uS pic.twitter.com/Dsw2u9MnF8Engramme's memory API is now live in public beta and built on an entirely new AI architecture, not Transformers, purpose-built to give apps persistent human memory without any search or prompting from the user. Engramme uses Large Memory Models, promising near-zero
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Gemini Adds Interactive Visualization in Chat
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Gemini can now help visualize complex topics through interactive experiences directly in chat. "Show me the visualization" button will appear under certain questions, which could trigger this new experience. Testing time
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Enable Cloud Agents Feature for Pull Requests in Cursor Dashboard
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Enable this feature in the Cursor dashboard: http://
cursor.com/dashboard/clou
d-agents#my-pull-requests
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Cursor Adds Demos and Screenshots to GitHub PRs for Cloud Agent Work
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Cursor can now attach demos and screenshots of its work to PRs it opens.
— Cursor (@cursor_ai) 9 avril 2026
Your team can review artifacts created by cloud agents directly in GitHub. pic.twitter.com/qVXyfxPhWYCursor can now attach demos and screenshots of its work to PRs it opens. Your team can review artifacts created by cloud agents directly in GitHub.
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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