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Welcome to Moonshot AI

icon Moonshot AI is committed to solving ambitious "moonshot" problems that will lead humanity to AGI. We embrace open source, and contributed the following projects to the community:

Research

  • Kimi K3: Kimi K3 is a 2.8T-parameter model built on Kimi Delta Attention (KDA) and Attention Residuals (AttnRes), with native vision capabilities and a 1-million-token context window. It is the world's first open 3T-class model, designed for frontier intelligence across long-horizon coding, knowledge work, and reasoning.
  • Attention Residuals: a drop-in replacement for residual connections with consistent scaling gains.
  • Kimi K2.5: Kimi K2.5 is an open-source, native multimodal agentic model built through continual pretraining on approximately 15 trillion mixed visual and text tokens atop Kimi-K2-Base.
  • Kimi Linear: a hybrid linear attention architecture that outperforms traditional full attention methods across various contexts.
  • Kimi K2: an open-source Mixture-of-Experts model with 32B activated parameters and 1T total parameters. It achieves state-of-the-art performance in frontier knowledge, math, and coding among non-thinking models.
  • Mooncake: pioneered the idea of KV-centric disaggregated LLM serving, winning the Best Paper award at FAST 2025. We released code and data corresponding to our paper.
  • Kimi-K1.5: Scaling Reinforcement Learning with LLMs. We released our tech report on building an o1-level multi-modal reasoning model.
  • Moonlight for our paper Muon is Scalable for LLM Training. We released (i) checkpoints for SOTA small models; (ii) code for our improved Muon optimizer.
  • MoBA: Mixture of Block Attention for Long-Context LLMs. We released code and paper for our looong-context LLM technique.
  • Kimi-VL: Mixture-of-Experts Vision-Language Model for Multimodal Reasoning, Long-Context Understanding, and Strong Agent Capabilities
  • Kimina-Prover Preview: Towards Large Formal Reasoning Models with Reinforcement Learning. We released technical report, model weights and a rectified version of miniF2F-test benchmark.
  • Kimi-Audio: Universal audio foundation model that handles diverse tasks like speech recognition, audio understanding, audio-to-text chat, speech-to-speech conversation. We released the technical report, model weights and evaluation toolkit.
  • Kimi-Dev: A Strong and Open-source Coding LLM for Issue Resolution. Kimi-Dev-72B achieves 60.4% performance on SWE-bench Verified.

Agents

  • Kimi Code: A fast, versatile, and extensible AI coding agent that brings Kimi into your projects and development workflow.

Service and Infra

Community

  • Forum: join discussions, ask questions, and share ideas about the Moonshot AI platform and APIs.

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  1. Kimi-K2.5 Kimi-K2.5 Public

    Open Visual Agentic Intelligence

    2.3k 317

  2. kimi-code kimi-code Public

    Kimi Code CLI — The Starting Point for Next-Gen Agents

    TypeScript 5.4k 788

  3. Kimi-Linear Kimi-Linear Public

    1.5k 82

  4. Kimi-K2 Kimi-K2 Public

    Kimi K2 is the large language model series developed by Moonshot AI team

    11k 889

  5. checkpoint-engine checkpoint-engine Public

    Checkpoint-engine is a simple middleware to update model weights in LLM inference engines

    Python 983 100

  6. MoBA MoBA Public

    MoBA: Mixture of Block Attention for Long-Context LLMs

    Python 2.2k 157

Repositories

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