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Can the RTX 3060 12GB Run Llama 3.2 3B?

Runs

Yes. Llama 3.2 3B at Q4_K_M is a 2 GB download (Hugging Face file listing for bartowski/Llama-3.2-3B-Instruct-GGUF), and the RTX 3060 12GB has 12 GB of VRAM, leaving about 10 GB for the KV cache and runtime. Published runs put generation at a median of 126 tokens per second across 2 cited measurements. Fastest cited run: TyoLab.

Model file2 GBQ4_K_M
VRAM12 GBRTX 3060 12GB
Headroom10 GBafter weights
Median speed126 tok/s2 cited runs
Bandwidth ceiling~178 tok/s360 GB/s ÷ 2 GB

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Published runs for Llama 3.2 3B on the RTX 3060 12GB

GenerationQuantRuntimeContextSourceDate
128 tok/s q4_K_M llama.cpp 8K TyoLablabelled "llama3.2:3b" 2026-05-11
123 tok/s q4_K_M ollama geerlingguy/ai-benchmarks GitHublabelled "llama3.2:3b" 2024-11-01

More about this pair

How much VRAM does Llama 3.2 3B need?

The Q4_K_M file is 2 GB. Add roughly 1.5 GB for the runtime and an ~8K-token context, so about 3.5 GB of VRAM holds it comfortably. Longer contexts grow the KV cache and need more.

What is the fastest Llama 3.2 3B can generate on the RTX 3060 12GB?

Generation reads every weight once per token, so the RTX 3060 12GB's 360 GB/s of memory bandwidth divided by the 2 GB file sets a ceiling near 178 tokens per second. Real runs land below it; SpecPicks rejects any published figure above it.

Check another pair

See the full matrix → · All RTX 3060 12GB benchmarks →

Llama 3.2 3B on other GPUs

Other models on the RTX 3060 12GB

How the checks work

The fit is the Q4_K_M file size against the card's VRAM, with 1.5 GB kept for the runtime and an ~8K context. A published run counts only if the pair fits, the run is Q4-class, its source does not call it an estimate, it is under the bandwidth ceiling above, and it is not one figure pasted across many cards. The whole matrix is downloadable as a CSV under CC BY 4.0.

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This page is editorial synthesis based on publicly available information. No independent first-party benchmarking is reported.