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Jev AI

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    Stanford and Nvidia release CLM-8B agent model▼Stanford and Nvidia's open CLM-8B caches reusable agent actions and runs up to 9x faster than Jev in tests✉newsTechnologySoftware2 d ago

    Stanford University and Nvidia have open-sourced CLM-8B, an AI model built for software agents that caches reusable actions instead of recomputing them. In tests the model ran up to nine times faster than Jev, a comparable agent system. The open release is drawing attention for offering large speed gains on agentic workloads, an area where inference cost is a major bottleneck for developers.

  2. 2
    Developers Split AI Agents into Deciding and Writing Brains●Developers Split AI Agents into Deciding and Writing Brains with Jev𝕏xSETechnologyAI2.5K22 h ago

    Developers working with AI agents are separating an agent's decision-making logic from the component that generates code or text, a pattern being discussed under the name Jev. The split lets a reasoning model plan while a writing model executes, and people in the field are debating whether this two-brain architecture improves reliability or just adds complexity to agent workflows.

  3. 3
    Open-source AI clones that run in your browser arrive●The open-source Jev AI clones are here (and they run in your browser)✉newsTechnologySoftware14 h ago

    Open-source clones of the Jev AI assistant have been released, with developers saying they can run entirely inside a web browser without dedicated servers or paid subscriptions. The projects aim to replicate the assistant's behavior locally, and interest centers on how closely they match the original and what a browser-based version means for access to the tool.

  4. 4
    AI model Jev beats Pokémon Red in under a week●Developer says AI decision model Jev beat Pokémon Red in under a week — non-LLM engine succeeds where traditional chatbots stalled for months, but Claude Opus 5 coached the model through its dead ends✉newsTechnologyAI1 d ago

    A developer says Jev, a non-LLM AI decision model, has completed Pokémon Red in under a week, a feat that reportedly stalled traditional chatbot-based attempts for months. According to the report, Claude Opus 5 acted as a coach, helping Jev work through dead ends during the run. The result is being discussed as evidence that specialized decision engines can outperform large language models on structured, long-horizon tasks like game completion.

  5. 5
    Non-LLM AI model beats Pokémon Red in under a week●Developer says Jev decision model beat Pokémon Red in under a week — non-LLM engine succeeds where traditional chatbots stalled for months, but Claude Opus 5 coached the model through its dead ends✉newsTechnologyAI1 d ago

    A developer says a decision-model system called Jev beat Pokémon Red in under a week, succeeding where LLM-based agents have stalled for months. The engine itself is not a language model, but Claude Opus 5 reportedly acted as a coach, helping it past dead ends. The claim has drawn attention from AI watchers who see it as a counterpoint to the belief that large language models are the best path to autonomous game-playing agents.

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