What GPU do I need to run empero-ai/Qwen3.8-4B-Distill?

4.7B parameters, published in BF16. View on Hugging Face

4.7B
Parameters
BF16
Native precision
Qwen3_5ForConditionalGeneration
Architecture
text-generation
Pipeline

Qwen3.8-4B-Distill is published by empero-ai on Hugging Face, with 11,716 downloads and 39 likes to date. It's a Qwen3_5ForConditionalGeneration model built for text-generation, published natively in BF16.

VRAM required & cheapest live GPU fit

Required VRAM = weight size at each precision, plus a fixed overhead for KV-cache, activations, and fragmentation. Full formula and assumptions: methodology.

PrecisionWeight sizeRequired VRAMCheapest live fitGPUs neededEst. $/hr (full fit)
BF168.7 GB10.4 GBRTX 5060 Ti1$0.110/hr
FP8 (quantized)4.3 GB5.2 GBRTX 5060 Ti1$0.110/hr
INT4 (quantized)2.2 GB2.6 GBRTX 5060 Ti1$0.110/hr

A GPU is only matched to a row if its hardware supports that precision, and the primary recommendation is always a single-GPU fit when one exists.

INT4 requires a quantized checkpoint actually published for this model, check its Hugging Face page before relying on this row.

Cheapest way to run Qwen3.8-4B-Distill at its published (BF16) precision: 1× RTX 5060 Ti, at $0.110/hr per GPU ($0.110/hr total). Quantizing to FP8 or INT4 (rows above) can cost less, but requires a compatible quantized checkpoint to exist for this model.

Qwen3.8-4B-Distill: common questions

Does Qwen3.8-4B-Distill fit on a 12 GB GPU?

Yes. At BF16 it needs 10.4 GB of VRAM, so a 12 GB card holds it with 1.6 GB to spare. An 8 GB card is not enough for it at BF16.

What is the least VRAM Qwen3.8-4B-Distill can run in?

2.6 GB, at INT4 (quantized), which fits a 6 GB card, against 10.4 GB at BF16. That row assumes an INT4 checkpoint has actually been published for this model, so check its Hugging Face page before planning around it.

Weight-to-VRAM math, the fit rules, and how live prices are normalized: full methodology.

More Qwen3.5 models

All 46 Qwen3.5 models: VRAM and GPU requirements

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