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MUSEBOARD

Workbench / Online

BUILD YOUR COMPUTE STACK

Start with the model. MuseBoard maps the memory and hardware. Settings are mirrored to the URL, so any configuration can be shared.

Compute workbench

Workbench / Online
Model / DeepSeek V3Units / GB (10⁹ B)

A / Model configuration

DeepSeek
37B active / token
B

Editing the count switches to a custom model with an estimated architecture.

Precision2 B / param
Context length8,192 tokens
Batch sizeConcurrent sequences
Workload
Best fit

Architecture / published config

Layers
61
Hidden
7,168
KV heads
MLA
KV / token
69 KB

Uses multi-head latent attention (MLA), which compresses the KV cache substantially.

B / Estimated VRAM

Inference

1,477GB

Serving: weights + KV cache + runtime overhead. Estimate — not a guarantee.

  • Model weights1,342 GB
  • KV cache0.58 GB
  • Runtime overhead134.2 GB

Memory headroom

571.2 GB

Free after estimated load

Utilization

72%

Target ≤ 90% of 2,048 GB

Decode ceiling

~649 tok/s

Theoretical, batch 1, bandwidth-bound

VRAM usage

1,477 GB / 2,048 GB

0 GB8 × 256 GB

Recommended configuration

8 × AMD Instinct MI325X 256GB

Total VRAM
2,048 GB
Topology
Single node · TP
Interconnect
Infinity Fabric
Board power
8,000 W

Compatibility / 8 × MI325X

  • Inference

    1,477 GB · 72% of 8 × MI325X

    Ready
  • Fine-tuning

    1,550 GB · 76% of 8 × MI325X

    Ready
  • Training

    11,824 GB · Needs 56 × MI325X (7 nodes)

    Cluster

Alternative configurations

  • Mixture-of-experts: all 671B parameters stay resident in memory; only ~37B are active per token.