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@@ -6,7 +6,7 @@ Run LLMs using [vLLM](https://docs.vllm.ai) with an OpenAI-compatible API
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[](https://www.runpod.io/console/hub/runpod-workers/worker-vllm)
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[](https://www.runpod.io/console/hub/runpod-workers/worker-vllm)
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Current vLLM version: [0.20.2](https://github.com/vllm-project/vllm/releases/tag/v0.20.2)
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Current vLLM version: [0.22.1](https://github.com/vllm-project/vllm/releases/tag/v0.22.1)
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---
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---
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@@ -8,9 +8,20 @@ ENV PATH="/root/.local/bin:$PATH"
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RUN ldconfig /usr/local/cuda-13.0/compat/
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RUN ldconfig /usr/local/cuda-13.0/compat/
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# nixl_ep PyPI wheels are compiled against CUDA 12.x and require libcudart.so.12.
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# CUDA 13 runtime is ABI-compatible with CUDA 12, so symlinking is safe.
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# Symlink into /usr/local/cuda/lib64 (already in LD_LIBRARY_PATH) so the linker
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# finds it by filename scan rather than relying on ldcache SONAME lookup.
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RUN ln -sf /usr/local/cuda/lib64/libcudart.so.13 /usr/local/cuda/lib64/libcudart.so.12 && ldconfig
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# CUDA 13.0 containers return libs to /usr/local/nvidia/lib64 so container
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# providers (RunPod, Lambda, etc.) can mount host drivers there consistently.
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# See: https://github.com/vllm-project/vllm/issues/18859
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ENV LD_LIBRARY_PATH=/usr/local/nvidia/lib64:/usr/local/cuda/lib64:$LD_LIBRARY_PATH
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# Install vLLM with FlashInfer - use CUDA 130 PyTorch wheels
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# Install vLLM with FlashInfer - use CUDA 130 PyTorch wheels
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RUN uv pip install --system "packaging>=24.2" && \
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RUN uv pip install --system "packaging>=24.2" && \
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uv pip install --system "vllm[flashinfer]==0.20.2" && \
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uv pip install --system "vllm[flashinfer]==0.22.1" && \
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uv pip install --system git+https://github.com/deepseek-ai/DeepGEMM.git@714dd1a4a980f7937a74343d19a8eba4fe321480 --no-build-isolation
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uv pip install --system git+https://github.com/deepseek-ai/DeepGEMM.git@714dd1a4a980f7937a74343d19a8eba4fe321480 --no-build-isolation
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# Install additional Python dependencies (after vLLM to avoid PyTorch version conflicts)
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# Install additional Python dependencies (after vLLM to avoid PyTorch version conflicts)
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@@ -8,7 +8,7 @@ Deploy OpenAI-Compatible Blazing-Fast LLM Endpoints powered by the [vLLM](https:
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Current vLLM version: [0.20.2](https://github.com/vllm-project/vllm/releases/tag/v0.20.2)
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Current vLLM version: [0.22.1](https://github.com/vllm-project/vllm/releases/tag/v0.22.1)
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> Check out our Load Balancer implementation here: [vLLM Load Balancer](https://github.com/runpod-workers/vllm-loadbalancer-ep)
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> Check out our Load Balancer implementation here: [vLLM Load Balancer](https://github.com/runpod-workers/vllm-loadbalancer-ep)
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@@ -3,7 +3,7 @@ pandas
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pyarrow
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pyarrow
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runpod==1.9.1
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runpod==1.9.1
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huggingface-hub
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huggingface-hub
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lmcache==0.4.5
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lmcache==0.4.6
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packaging>=24.2
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packaging>=24.2
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typing-extensions>=4.8.0
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typing-extensions>=4.8.0
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pydantic
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pydantic
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@@ -0,0 +1,10 @@
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model: meta-llama/Llama-3.1-8B-Instruct
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gpu-memory-utilization: 0.95
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max-model-len: 8192
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dtype: auto
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trust-remote-code: true
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quantization: fp8
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kv-cache-dtype: fp8
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enforce-eager: false
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enable-prefix-caching: true
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speculative-config: '{"model":"RedHatAI/Llama-3.1-8B-Instruct-speculator.eagle3","method":"eagle3","num_speculative_tokens":3}'
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@@ -0,0 +1,10 @@
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model: Qwen/Qwen3-8B
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gpu-memory-utilization: 0.95
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max-model-len: 8192
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dtype: auto
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trust-remote-code: true
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quantization: fp8
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kv-cache-dtype: fp8
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enforce-eager: false
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enable-prefix-caching: true
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speculative-config: '{"model":"RedHatAI/Qwen3-8B-speculator.eagle3","method":"eagle3","num_speculative_tokens":3}'
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