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Deepseek's new flagship open model is built for agent loops, not benchmarks. v4.1 flash, weights…

Yethikrishna ROriginal on Threads

deepseek's new flagship open model is built for agent loops, not benchmarks. v4.1 flash, weights out september 10 under mit, activates just 16b of its 552b params per token and cuts kv cache to a quarter of v4 flash while scoring 90.6 on terminal-bench 2.1.

the memory budget is the new spec sheet.

Context

DeepSeek's news post of 10 September 2026 and the Hugging Face model card describe V4.1 Flash as a 552B parameter MoE with 8B active for input and 16B for output, a KV cache at one quarter of the HBM and one eighth of the SSD versus the previous generation, and repository and weights under the MIT License. The card's table shows 90.6 on Terminal-Bench 2.1 using the Minimal mode of the DeepSeek Harness at 1M context, with other values (88.0, 84.1, 85.0, 86.1, 90.3, 85.8) across scaffolds. DeepSeek calls it the smallest model in the new architecture family and says V4.1-Pro is still to launch.

How it compares

The figures are first-party and vendor-reported. 16B active per token is the output-side figure and the input side is 8B. A quarter of V4 Flash matches the HBM figure only. The 90.6 is configuration-specific. Flagship is not DeepSeek's wording, since a Pro tier is pending. The weights date of 10 September is partly unverified, because the card's own date was not stated in the text read. The memory budget is the new spec sheet is the author's take.

Watch next

  • V4.1-Pro and independent Terminal-Bench 2.1 runs.

Sources

  1. DeepSeek V4.1 Flash (DeepSeek news, 10 Sep 2026)deepseek.com
  2. DeepSeek-V4.1-Flash (Hugging Face)huggingface.co

Provenance

The note above is reproduced unedited from the original post, first published on Threads on 20 September 2026 at 23:34 IST. Sources are the papers and datasets the note draws on.

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