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What can a NVIDIA H200 run locally?

The NVIDIA H200 has 141 GB of VRAM. At 4-bit quantization it can run LLMs up to roughly 192B parameters. Below, every popular model scored against it — verdict, best quantization, and how to run it.

16 run comfortably0 with workarounds0 too big
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Popular AI models on a H200

ModelSizeVerdictEst. speedBest way to run
SDXL3.5BRunsRun on your GPU with Diffusers / ComfyUI
FLUX.1-dev12BRunsRun on your GPU with Diffusers / ComfyUI
Qwen2.5-0.5B0.5BRuns~440 tok/sRun on your GPU with FP16
GPT-2124MRuns~480 tok/sRun on your GPU with FP16
Phi-3-mini3.8BRuns~230 tok/sRun on your GPU with FP16
Qwen2.5-Coder7BRuns~160 tok/sRun on your GPU with FP16
Mistral-7B7BRuns~160 tok/sRun on your GPU with FP16
Llama-3.1-8B8BRuns~150 tok/sRun on your GPU with FP16
Gemma-2-9B9BRuns~140 tok/sRun on your GPU with FP16
Qwen2.5-14B14BRuns~97 tok/sRun on your GPU with FP16
Qwen2.5-32B32BRuns~48 tok/sRun on your GPU with FP16
Mixtral-8x7B47BRuns~33 tok/sRun on your GPU with FP16
DeepSeek-R1-7B7BRuns~160 tok/sRun on your GPU with FP16
Whisper-large-v31.5BRunsRun on CPU or GPU with the standard library
all-MiniLM-L622MRunsRun on CPU or GPU with the standard library
Llama-3.1-70B70BRuns~44 tok/sRun on your GPU with Q8

Est. speed = rough single-stream generation (tokens/sec) at the best-fitting quant, based on the NVIDIA H200's 4800 GB/s memory bandwidth. Real speed varies with the runtime, context length, and batch size.

NVIDIA H200 — frequently asked questions

Can a NVIDIA H200 run a 7B LLM?

Yes, comfortably. A 7–8B model at 4-bit needs only ~5 GB, well within the NVIDIA H200's 141 GB.

How fast will a 7B model run on a NVIDIA H200?

Roughly ~160 tok/s for a 7–8B model at 4-bit, and about ~100 tok/s for a 13B — these are estimates for single-stream generation and vary with the runtime and context length. Speed scales with the NVIDIA H200's 4800 GB/s of memory bandwidth.

Can a NVIDIA H200 run a 13B model?

Yes, comfortably on a 141 GB card. 13B at 4-bit needs ~9 GB.

Can a NVIDIA H200 run a 70B model like Llama 3 70B?

Yes, comfortably. A 70B model needs ~40 GB even at 4-bit; on 141 GB you'd need GPU+CPU offload or a smaller quant.

What's the largest LLM a NVIDIA H200 can run?

Roughly a 192B-parameter model at 4-bit quantization fits in 141 GB of VRAM. Larger models still run via GPU+CPU offload, just slower.

Compare with other GPUs