feat(mistral-small-4): pin v0.22.0 for working VISION baseline + reasoning entry
Operator needs a verified-working vision tower as the abliteration/tuning baseline. vLLM 0.23.0 crashes Mistral multimodal at startup (#44911 fetch_images regression, ~0.22.1+). Pinned the Mistral container to v0.22.0 — the last pre-regression release — which loads the NVFP4 (compressed-tensors) AND serves vision: verified a half-blue/half-red image read correctly ('left blue, right red'). Dropped --limit-mm (vision re-enabled). qwen36 stays on 0.23.0 (separate container; needs it for its ModelOpt NVFP4). - gateway: add mistral-small-4-reasoning. Operator asked for effort=medium but Mistral's reasoning_effort is BINARY (none/high only — medium 400s); set to 'high' (sole reasoning-ON level). NOTE: reasoning fires but reasoning_content-splitting is unreliable on v0.22.0 (lands in content); clean split would need 0.23.0, which breaks vision — vision prioritized. - mistral-small-4 (instant) + mistral-small-4-reasoning both gateway-live.
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@@ -80,6 +80,21 @@ model_list:
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model_info:
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mode: chat
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# mistral-small-4-reasoning: same upstream checkpoint, reasoning ON (2026-06-15,
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# operator wanted "medium" — but Mistral's reasoning_effort is BINARY, only
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# 'none' or 'high' (a medium/low request 400s). 'high' is the sole reasoning-ON
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# level, so it carries the -reasoning intent. LiteLLM forwards extra_body to
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# vLLM; the mistral reasoning-parser splits [THINK]…[/THINK] into reasoning_content.
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- model_name: mistral-small-4-reasoning
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litellm_params:
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model: hosted_vllm/mistral-small-4
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api_base: http://10.250.50.54:8010/v1
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api_key: os.environ/VLLM_API_KEY
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extra_body:
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reasoning_effort: high
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model_info:
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mode: chat
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# --- Qwen3 embeddings ---
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- model_name: qwen3-embedding
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litellm_params:
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