MiniMax (official)

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MiniMax (official)

MiniMax (official)

@MiniMax_AI

Agent: @MiniMaxAgent Token Plan: https://t.co/BDCycxepZw API: https://t.co/fHRdSV7BwZ Community: https://t.co/uhxxfLgkLU

San Francisco Присоединился Ocak 2025
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MiniMax (official)
MiniMax (official)@MiniMax_AI·
Introducing MiniMax M3: The First Open-Weights Model to Combine Three Frontier Capabilities - Coding & Agentic Frontier: 59.0% SWE-Bench Pro, 66.0% Terminal Bench 2.1, 34.8% SWE-fficiency, 28.8% KernelBench Hard, 74.2% MCP Atlas - MiniMax Sparse Attention scales context to 1M - Natively Multimodal from Step Zero API: platform.minimax.io Token Plan: platform.minimax.io/subscribe/toke… 🚀New! MiniMax Code: code.minimax.io Weights & Tech Report in ~10 Days
MiniMax (official) tweet media
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nick
nick@thecsguy·
@MiniMax_AI do they get something special?
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MiniMax (official)
MiniMax (official)@MiniMax_AI·
Who’s claiming follower #100,000? 🧋👀💃
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Da7em
Da7em@Da7_Tech·
@MiniMax_AI I’m cancelling my subscription, and I’ll make sure everyone I know stays away from your service. This has been a terrible experience, and I’m done wasting my time and money on something this unreliable.
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Lonely
Lonely@Lonely__MH·
@MiniMax_AI 要不我先取关,待会再关注?🙂
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Ivan Fioravanti ᯅ
Ivan Fioravanti ᯅ@ivanfioravanti·
Reminder for Europeans and beyond: Don’t take the status quo for granted. Don't assume you can't do it just because someone else does it better. And you don't need to move somewhere else to make it happen. Stop talking. Heads down. Build your own future! Shanghai or Beijing didn't wait for permission. 🤷🏻‍♂️
Ivan Fioravanti ᯅ tweet mediaIvan Fioravanti ᯅ tweet media
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MiniMax (official) ретвитнул
MiniMax (official)
MiniMax (official)@MiniMax_AI·
M3 is running together 🤝 with @togethercompute, and with faster-than-ever inference
Together AI@togethercompute

MiniMax-M3 from @MiniMax_AI is now available on Together AI. It’s an open-weight native multimodal model with 1M context, MiniMax Sparse Attention, and thinking / non-thinking modes. Together AI is MiniMax’s preferred cloud partner, with inference optimizations delivering up to 125% higher throughput across concurrency levels.

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MiniMax (official)
MiniMax (official)@MiniMax_AI·
the kernels are doing the lord's work today, day-0 on @vllm_project, verified on nvidia and amd. go read the writeup 👇
vLLM@vllm_project

🎉 Congrats to @MiniMax_AI on releasing MiniMax M3! Frontier coding and agentic capabilities, native image and video input, computer use, and a 1M-token context window, all in a single open model. At the heart of M3 is MSA, a new sparse attention architecture: instead of attending densely over the full KV cache, each query scores 128-token KV blocks and runs attention only over the top blocks. That is what makes 1M-token context practical to serve. M3 runs in vLLM with day-0 support, verified on NVIDIA and AMD hardware: ✨ MSA sparse attention with dedicated prefill and decode kernels ✨ 1M-token context serving with prefix caching and chunked prefill ✨ BF16 and MXFP8 checkpoints, with MoE backends for both Hopper and Blackwell ✨ Native multimodal input (image + video) ✨ Tool calling, reasoning parsing, and thinking-mode control for agent workloads Day-0 support like this is a true team effort. Grateful to the teams at @MiniMax_AI, @NVIDIAAI, @AIatAMD, and @inferact, and to the vLLM community for making it happen. 🙏 Deep dive into the implementation, kernel work, and deployment recipes: 🔗 vllm.ai/blog/2026-06-1…

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MiniMax (official) ретвитнул
RyanLee
RyanLee@RyanLeeMiniMax·
We’ve been discussing what parameter size works best for the community. While the M3 series boasts a larger parameter count compared to the M2 lineup, we’ve kept its scale deliberately restrained so local model enthusiasts can run it affordably. This time we settled on 428B, hoping it will be accessible to a wider audience.
Lomo@LOMO_GMY

@MiniMax_AI 400B ? I doubt whether you have the capability to train models with 800B parameters or even 1T parameters.

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