Can I Run Ministral 3 on RTX 5060 Ti 16 GB Desktop (16 GB VRAM, 32 GB RAM)?

Written by Jakub Rusinowski · Last updated September 6, 2026

Yes

Yes — Ministral 3 14B at Q6_K needs about 13.7 GB of the 16 GB usable on RTX 5060 Ti 16 GB Desktop (16 GB VRAM, 32 GB RAM) (~2.3 GB spare), at ~26 tok/s (estimated), with room for about 16,384 tokens of context.

Confidence: medium · Recommended quantization: Q6_K · Estimated speed: ~26 tok/s

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RTX 5060 Ti 16 GB Desktop (16 GB VRAM, 32 GB RAM) — what it gives a model

Usable memory for models16 GB
Memory bandwidth448 GB/s
Form factorDesktop
Operating systemWindows or Linux
Memory upgradeableYes

Ministral 3 on RTX 5060 Ti 16 GB Desktop (16 GB VRAM, 32 GB RAM): memory by quantization

QuantMemory neededFits 16 GB?Max contextEst. speedDownload
F1630.2 GB✗ No28 GB
Q8_017.1 GB✗ No14.9 GB
Q6_K13.7 GB✓ Yes16K~26 tok/s11.5 GB
Q5_K_M12.1 GB✓ Yes16K~29.6 tok/s9.9 GB
Q4_K_M10.6 GB✓ Yes32K~34 tok/s8.5 GB
Q3_K_M8.1 GB✓ Yes32K~45.3 tok/s6 GB
Q2_K6.8 GB✓ Yes32K~55.6 tok/s4.6 GB

Which Ministral 3 sizes fit

VariantNeeds at Q4_K_MFits?Est. speed
Ministral 3 14B10.6 GB✓ Fits~34 tok/s
Ministral 3 8B6.8 GB✓ Fits~54.6 tok/s
Ministral 3 3B3.5 GB✓ Fits~112.6 tok/s

What to watch out for

RTX 5060 Ti 16 GB desktop limitations

Recommended setup

Ollama or llama.cpp (CUDA/ROCm) — vLLM if you need concurrent serving

How these numbers are calculated

FAQ

Can I run Ministral 3 on RTX 5060 Ti 16 GB Desktop (16 GB VRAM, 32 GB RAM)?

Yes — Ministral 3 14B at Q6_K needs about 13.7 GB of the 16 GB usable on RTX 5060 Ti 16 GB Desktop (16 GB VRAM, 32 GB RAM) (~2.3 GB spare), at ~26 tok/s (estimated), with room for about 16,384 tokens of context.

Which quantization of Ministral 3 should I use on RTX 5060 Ti 16 GB Desktop (16 GB VRAM, 32 GB RAM)?

Q6_K — it needs about 13.7 GB of the 16 GB available, downloads as roughly 11.5 GB, and runs at an estimated 26 tokens/sec with up to 16K of context.

What limits Ministral 3 on RTX 5060 Ti 16 GB Desktop (16 GB VRAM, 32 GB RAM)?

Nothing binding — the model fits with headroom and generates at a usable speed on this hardware.

Which runtime should I use?

Ollama or llama.cpp (CUDA/ROCm) — vLLM if you need concurrent serving

Other Computers

Other Models on RTX 5060 Ti 16 GB Desktop (16 GB VRAM, 32 GB RAM)

Ministral 3 on GPUs

What This Model Is Good At

Model & Tools

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