Can I Run Cogito v1 on RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM)?
Written by Jakub Rusinowski · Last updated March 20, 2026
Yes, but it is tight
Yes, but it is tight — Cogito v1 14B at Q4_K_M needs about 10.9 GB of the 12 GB usable on RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM), leaving only ~1.1 GB before the runtime starts swapping. Expect ~27.4 tok/s (estimated), with room for about 8,192 tokens of context.
Confidence: medium · Recommended quantization: Q4_K_M · Estimated speed: ~27.4 tok/s
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RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM) — what it gives a model
| Usable memory for models | 12 GB |
| Memory bandwidth | 360 GB/s |
| Form factor | Desktop |
| Operating system | Windows or Linux |
| Memory upgradeable | Yes |
Cogito v1 on RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM): memory by quantization
| Quant | Memory needed | Fits 12 GB? | Max context | Est. speed | Download |
|---|---|---|---|---|---|
| F16 | 30.4 GB | ✗ No | — | — | 28 GB |
| Q8_0 | 17.3 GB | ✗ No | — | — | 14.9 GB |
| Q6_K | 13.9 GB | ✗ No | — | — | 11.5 GB |
| Q5_K_M | 12.3 GB | ✗ No | — | — | 9.9 GB |
| Q4_K_M | 10.9 GB | ✓ Yes | 8K | ~27.4 tok/s | 8.5 GB |
| Q3_K_M | 8.4 GB | ✓ Yes | 16K | ~36.6 tok/s | 6 GB |
| Q2_K | 7 GB | ✓ Yes | 32K | ~44.9 tok/s | 4.6 GB |
Which Cogito v1 sizes fit
| Variant | Needs at Q4_K_M | Fits? | Est. speed |
|---|---|---|---|
| Cogito v1 70B | 45.7 GB | ✗ Too large | — |
| Cogito v1 32B | 22.3 GB | ✗ Too large | — |
| Cogito v1 14B | 10.9 GB | ✓ Fits | ~27.4 tok/s |
| Cogito v1 8B | 6.7 GB | ✓ Fits | ~45.2 tok/s |
| Cogito v1 3B | 3.6 GB | ✓ Fits | ~93.5 tok/s |
What to watch out for
- Only ~1.1 GB of headroom at Q4_K_M: a longer context or a second application can push this into swapping.
- 2 larger variants of Cogito v1 do not fit and would need CPU offload or different hardware.
RTX 3060 12 GB desktop limitations
- The budget entry point to local AI: 12 GB runs 7–14B models well and nothing larger without offload.
Recommended setup
Ollama or llama.cpp (CUDA/ROCm) — vLLM if you need concurrent serving
How these numbers are calculated
- Memory need = quantized weights + KV cache at 8,192 tokens (f16) + 0.8 GB runtime overhead.
- 12 GB of VRAM on the NVIDIA GeForce RTX 3060 (12GB) at 360 GB/s.
- 32 GB of system RAM available for CPU offload when a model exceeds VRAM.
- Throughput is a memory-bandwidth roofline estimate, not a measurement. It is labelled "estimated" everywhere it appears.
- KV cache is computed from this model's published attention configuration.
FAQ
Can I run Cogito v1 on RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM)?
Yes, but it is tight — Cogito v1 14B at Q4_K_M needs about 10.9 GB of the 12 GB usable on RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM), leaving only ~1.1 GB before the runtime starts swapping. Expect ~27.4 tok/s (estimated), with room for about 8,192 tokens of context.
Which quantization of Cogito v1 should I use on RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM)?
Q4_K_M — it needs about 10.9 GB of the 12 GB available, downloads as roughly 8.5 GB, and runs at an estimated 27.4 tokens/sec with up to 8K of context.
What limits Cogito v1 on RTX 3060 12 GB Desktop (12 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 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM)
- Cosmos 3 on RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM)
- DeepSeek-OCR on RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM)
- DeepSeek R1 on RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM)
- Devstral on RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM)
- EXAONE 3.5 on RTX 3060 12 GB Desktop (12 GB VRAM, 32 GB RAM)
Cogito v1 on GPUs
- Cogito v1 on NVIDIA GeForce RTX 5090
- Cogito v1 on NVIDIA GeForce RTX 5080
- Cogito v1 on NVIDIA GeForce RTX 5070 Ti
- Cogito v1 on NVIDIA GeForce RTX 5070
What This Model Is Good At
Model & Tools
← Can I Run It? | Cogito v1 model page | Check your hardware