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URL: https://willitrunai.com/can-run/deepseek-r1-distill-32b-on-a16-64gb


Can DeepSeek R1 Distill 32B run on NVIDIA A16 64GB?

YES — Runs Great

A73Great
Estimated from fit model

DeepSeek R1 Distill 32B needs ~31.0 GB VRAM. NVIDIA A16 64GB has 64.0 GB. With Q4_K_M quantization, expect ~24 tok/s.

Runtime: OllamaCapacity: RoomyBandwidth: MediumStack: BasicBottleneck: Balanced
Share:

Operating mode

Choose the run profile you care about

Interactive favors responsiveness, while light API and scale-out lean harder on serving readiness. The fit stays the same, but the recommendation lens changes.

Current mode

Balanced

Balanced for general local use. Keeps the ranking neutral across personal and serving workflows.

Capabilities:

Select quantization to explore

Q4_K_M (Medium quality) — 31.0 GB, 25.9 tok/s, Runs well
31.0 GB required64.0 GB available
48% VRAM used

Fit status

Runs well

Decode

25.9 tok/s

TTFT

7477 ms

Safe context

33K

Memory

31.0 GB / 64.0 GB

Memory breakdown

Weights19.5 GB
KV Cache3.9 GB
Runtime1.2 GB
Headroom6.4 GB

See how fast it feels

See how fast it feelsDeepSeek R1 Distill 32B on NVIDIA A16 64GB
1st promptCold start — includes initialization
>Solve: If a train travels at 60 mph for 2.5 hours, how far does it go?
Let me work through this step by step. Given information: - Speed = 60 mph (miles per hour) - Time = 2.5 hours Formula: Distance = Speed x Time Calculation: Distance = 60 mph x 2.5 h = 150 miles The train travels 150 miles. Double-check: at 60 mph the train covers 60 miles each hour. In half an hour it covers 30 miles. So in 2.5 hours: 60 + 60 + 30 = 150 miles. Confirmed.
2nd promptWarm — model ready, no init overhead
>What if the train stops for 20 minutes halfway?
The stop doesn't change the total distance covered while moving, but it affects total trip time. Breakdown: - First half: 1.25 hours at 60 mph = 75 miles - Stop: 20 minutes (no distance) - Second half: 1.25 hours at 60 mph = 75 miles Total distance: 150 miles (same) Total time: 2.5 h + 0.33 h = 2.83 hours Average speed: 150 / 2.83 = 53 mph The distance stays the same but average speed drops to 53 mph because of the stop.
Estimated: 25.9 tok/s decode · 7.5s TTFT (warm) · 65 tok/s prefill

What limits this setup

This setup is broadly balanced for this model.

No major red flags

This recommendation has enough memory headroom and acceptable estimated speed for the selected workload.

Best improvement path

Performance by workload

WorkloadGradeFitDecodeTTFTContext
ChatARuns well25.9 tok/s4078 ms33K
CodingARuns well24.0 tok/s8075 ms33K
Agentic CodingARuns well25.9 tok/s10875 ms33K
ReasoningARuns well25.9 tok/s8836 ms33K
RAGARuns well25.9 tok/s13594 ms33K

Quantization options

How DeepSeek R1 Distill 32B (32B params) fits at each quantization level on NVIDIA A16 64GB (64.0 GB usable).

QuantBitsVRAMQualityFit
Q2_K
2
12.5 GB
LowB67
Q3_K_S
3
15.7 GB
LowB68
NVFP4
4

Get started

Copy-paste commands to run DeepSeek R1 Distill 32B on your machine.

Run

ollama run deepseek-r1:32b

Your hardware

More models your NVIDIA A16 64GB can run

ModelParamsGradeDecodeCapabilities
👁 Alibaba
Qwen 3.6 35B A3B
35BS59.5 tok/s
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Frequently asked questions

See all results for NVIDIA A16 64GBSee all hardware for DeepSeek R1 Distill 32B
17.9 GB
Medium
B68
Q4_K_M
4
19.5 GB
MediumB69
Q5_K_M
5
23.0 GB
HighB70
Q6_K
6
26.2 GB
HighA70
Q8_0Best for your GPU
8
34.2 GB
Very HighA73
F16
16
65.6 GB
MaximumF0
Qwen 3.5 35B A3B
35B
S
64.7 tok/s
👁 Alibaba
Qwen 2.5 VL 72B
72BS11.6 tok/s
👁 Alibaba
Qwen3-Coder-Next
80BS31.6 tok/s
👁 Meta
Llama 3.3 70B
70BA11.9 tok/s