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URL: https://willitrunai.com/can-run/qwen-2.5-coder-14b-on-rx-6950-xt-16gb


Can Qwen 2.5 Coder 14B run on RX 6950 XT 16GB?

YES — Tight Fit

B65Good
Estimated from fit model

Qwen 2.5 Coder 14B needs ~14.0 GB VRAM. RX 6950 XT 16GB has 16.0 GB. With Q4_K_M quantization, expect ~39 tok/s.

Runtime: llama.cppCapacity: TightBandwidth: MediumStack: StandardBottleneck: Balanced
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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) — 14.0 GB, 42.2 tok/s, Tight fit
14.0 GB required16.0 GB available
88% VRAM used

Fit status

Tight fit

Decode

42.2 tok/s

TTFT

4582 ms

Safe context

27K

Memory

14.0 GB / 16.0 GB

Memory breakdown

Weights8.5 GB
KV Cache2.9 GB
Runtime0.9 GB
Headroom1.6 GB

See how fast it feels

See how fast it feelsQwen 2.5 Coder 14B on RX 6950 XT 16GB
1st promptCold start — includes initialization
>Write a Python function to sort a list
Here's a Python function that sorts a list using quicksort: def quicksort(arr): if len(arr) <= 1: return arr pivot = arr[len(arr) // 2] left = [x for x in arr if x < pivot] middle = [x for x in arr if x == pivot] right = [x for x in arr if x > pivot] return quicksort(left) + middle + quicksort(right) # Example usage numbers = [3, 6, 8, 10, 1, 2, 1] print(quicksort(numbers)) # [1, 1, 2, 3, 6, 8, 10] The algorithm picks a pivot, partitions the list into smaller, equal, and larger elements, then recursively sorts each partition and concatenates the results.
2nd promptWarm — model ready, no init overhead
>Now add type hints and a docstring
def quicksort(arr: list[int]) -> list[int]: """Sort a list using the quicksort algorithm. Args: arr: List of integers to sort. Returns: A new sorted list. """ if len(arr) <= 1: return arr pivot = arr[len(arr) // 2] left = [x for x in arr if x < pivot] middle = [x for x in arr if x == pivot] right = [x for x in arr if x > pivot] return quicksort(left) + middle + quicksort(right) Added type hints for the input and return type, plus a Google-style docstring.
Estimated: 42.2 tok/s decode · 4.6s TTFT (warm) · 106 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
ChatBRuns well39.1 tok/s2699 ms27K
CodingBTight fit39.1 tok/s4949 ms27K
Agentic CodingCRuns with offload26.1 tok/s10769 ms27K
ReasoningBTight fit39.1 tok/s5849 ms27K
RAGCRuns with offload26.1 tok/s13461 ms27K

Quantization options

How Qwen 2.5 Coder 14B (14B params) fits at each quantization level on RX 6950 XT 16GB (16.0 GB usable).

QuantBitsVRAMQualityFit
Q2_K
2
5.5 GB
LowB64
Q3_K_S
3
6.9 GB
LowB65
NVFP4
4

Get started

Copy-paste commands to run Qwen 2.5 Coder 14B on your machine.

Run

ollama run qwen2.5-coder:14b

Upgrade options

Hardware that runs Qwen 2.5 Coder 14B well

RX 7900 XT 20GBBudget pick
20 GB VRAM (+4)800 GB/s (+224)
B
Raises estimated decode speed by about 44%.60.7 tok/s decode

Raises estimated decode speed by about 44%.

Adds memory headroom for longer context windows and future model growth.

~$899 MSRP

RX 7900 XTX 24GBBest value
24 GB VRAM (+8)960 GB/s (+384)
B
Raises estimated decode speed by about 107%.87.4 tok/s decode

Raises estimated decode speed by about 107%.

Adds memory headroom for longer context windows and future model growth.

~$999 MSRP

AMD Instinct MI100 32GBAMD upgrade
32 GB VRAM (+16)1228 GB/s (+652)
B
Raises estimated decode speed by about 139%.100.9 tok/s decode

Raises estimated decode speed by about 139%.

Adds memory headroom for longer context windows and future model growth.

~$11,500 MSRP

Frequently asked questions

See all results for RX 6950 XT 16GBSee all hardware for Qwen 2.5 Coder 14B
7.8 GB
Medium
B66
Q4_K_M
4
8.5 GB
MediumB66
Q5_K_M
5
10.1 GB
HighB65
Q6_KBest for your GPU
6
11.5 GB
HighB65
Q8_0
8
15.0 GB
Very HighF0
F16
16
28.7 GB
MaximumF0