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Model details
DeepSeek R1 Distill Qwen 32B
DeepSeek R1 Distill Qwen 32B is a distilled large language model that takes the Qwen 2.5 32B base and fine-tunes it on reasoning traces generated by DeepSeek R1, pairing a capable open base with the larger model's chain-of-thought style training signal. The result is a text-to-text system positioned for reasoning-heavy workloads such as multi-step analysis, instruction following, and code-related assistance where step-by-step thinking improves quality. Because the model is presented as a distillate rather than a from-scratch training run, its behavior leans toward the patterns and conventions of the Qwen 2.5 family while inheriting R1-style reasoning habits, making it useful as a practical middle ground between smaller instruction-tuned models and frontier reasoning systems.
The distilled model is offered for local and self-hosted inference alongside hosted access, with community GGUF quantizations available for runtimes such as llama.cpp, including configurations designed to fit within the memory budget of a single high-end consumer GPU. It is marketed as outperforming OpenAI's o1-mini on relevant reasoning evaluations, reflecting the strength of the R1-derived supervision signal rather than a larger parameter count. In practice this version fits teams that want stronger reasoning than a typical 7B to 14B class model without moving to the largest frontier systems, and it pairs naturally with tool-calling and temperature-controlled decoding for agent-style or code-generation pipelines.
Quick Info
Powered by- Provider
- Alibaba (China)
- Model key
- deepseek-r1-distill-qwen-32b
- Release date
- Jan 1, 2025
- Last updated
- Jan 1, 2025
- Input modalities
- Output modalities
- Capabilities
Cost
- Input token cost
- $0.287
- Output token cost
- $0.861
Limits
- Output tokens
- 16,384 tokens
- Context window
- 32,768 tokens
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