Nemotron 3 Nano 30B needs ~25.9 GB VRAM. NVIDIA A100 40GB has 40.0 GB. With Q4_K_M quantization, expect ~77 tok/s.
Operating mode
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.
Select quantization to explore
Fit status
Runs well
Decode
76.7 tok/s
TTFT
2523 ms
Safe context
108K
Memory
25.9 GB / 40.0 GB
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.
| Workload | Grade | Fit | Decode | TTFT | Context |
|---|---|---|---|---|---|
| Chat | S | Runs well | 76.7 tok/s | 1376 ms | 108K |
| Coding | S | Runs well | 76.7 tok/s | 2523 ms | 108K |
| Agentic Coding | S | Runs well | 76.7 tok/s | 3670 ms | 108K |
| Reasoning | S | Runs well | 76.7 tok/s | 2982 ms | 108K |
| RAG | S | Runs well | 76.7 tok/s | 4587 ms | 108K |
Inference speed
Estimated decode speed (tokens/sec) for Nemotron 3 Nano 30B at Q4_K_M across popular GPUs and Apple Silicon, using the fastest local runtime per device. Fastest is RTX 5090 32GB at ~71 tok/s. Speed is memory-bandwidth bound, so cards that fit the whole model in VRAM run far faster than ones that offload to system RAM.
| GPU / Mac | Memory | Quant | Speed (tok/s) | Fits? |
|---|---|---|---|---|
| 32 GB | Q4_K_M | 70.5 | Fits | |
MacBook Pro M4 Max 128GB | 128 GB | Q4_K_M | 38.1 | Fits |
MacBook Pro M4 Max 64GB | 64 GB | Q4_K_M | 38.1 | Fits |
| 24 GB | Q4_K_M | 32.8 | Offloads | |
Mac Studio M3 Ultra 256GB | 256 GB | Q4_K_M | 32.7 | Fits |
RX 7900 XTX 24GB | 24 GB | Q4_K_M | 30.3 | Offloads |
| 24 GB | Q4_K_M | 28.0 | Offloads | |
Mac Studio M2 Ultra 128GB | 128 GB | Q4_K_M | 27.3 | Fits |
Mac Studio M1 Ultra 128GB | 128 GB | Q4_K_M | 25.8 | Fits |
MacBook Pro M4 Pro 48GB | 48 GB | Q4_K_M | 24.0 | Fits |
MacBook Pro M3 Max 64GB | 64 GB | Q4_K_M | 14.1 | Fits |
MacBook Pro M1 Max 64GB | 64 GB | Q4_K_M | 12.9 | Fits |
| 16 GB | Q4_K_M | 11.9 | Too big | |
| 12 GB | Q4_K_M | 4.2 | Too big | |
| 12 GB | Q4_K_M | 2.6 | Too big | |
| 8 GB | Q4_K_M | 2.0 | Too big |
Estimates for single-stream decoding at Q4_K_M; real tokens/sec varies with prompt length, context, batch size, and runtime build. Prompt processing (prefill) is faster than the decode figures shown here.
How Nemotron 3 Nano 30B (30B params) fits at each quantization level on NVIDIA A100 40GB (40.0 GB usable).
| Quant | Bits | VRAM | Quality | Fit |
|---|---|---|---|---|
Q2_K | 2 | 11.7 GB | Low | S85 |
Q3_K_S | 3 | 14.7 GB | Low | S86 |
NVFP4 | 4 | 16.8 GB | Medium | S87 |
Q4_K_M | 4 | 18.3 GB | Medium | S88 |
Q5_K_M | 5 | 21.6 GB | High | S89 |
Q6_K | 6 | 24.6 GB | High | S89 |
Q8_0Best for your GPU | 8 | 32.1 GB | Very High | S88 |
F16 | 16 | 61.5 GB | Maximum | F0 |
Copy-paste commands to run Nemotron 3 Nano 30B on your machine.
Run
ollama run nemotron-nano:30bYour hardware
| Model | Params | Grade | Decode | Capabilities |
|---|---|---|---|---|
| 30.5B | S | 197.5 tok/s | ||
| 35B | S | 166 tok/s | ||
| 35B | S | 180.5 tok/s | ||
| 32B | S | 72.8 tok/s | ||
| 30.5B | S | 197.5 tok/s |
Yes, NVIDIA A100 40GB can run Nemotron 3 Nano 30B with a S grade (Runs well). Expected decode speed: 76.7 tok/s.
Nemotron 3 Nano 30B (30B parameters) requires approximately 25.9 GB of memory with Q4_K_M quantization.
The recommended quantization for Nemotron 3 Nano 30B is Q4_K_M, which balances quality and memory efficiency.
On NVIDIA A100 40GB, Nemotron 3 Nano 30B achieves approximately 76.7 tokens per second decode speed with a time-to-first-token of 2523ms using Q4_K_M quantization.
For coding workloads, Nemotron 3 Nano 30B on NVIDIA A100 40GB receives a S grade with 76.7 tok/s and 108K context.
On NVIDIA A100 40GB, Nemotron 3 Nano 30B can safely use up to 108K tokens of context. The model's official context limit is 131K, but available memory constrains the safe maximum.
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