How to use from
OpenClaw
Start the MLX server
# Install MLX LM:
uv tool install mlx-lm
# Start a local OpenAI-compatible server:
mlx_lm.server --model "OsaurusAI/Ornith-1.0-35B-MXFP4"
Configure OpenClaw
# Install OpenClaw:
npm install -g openclaw@latest
# Register the local server and set it as the default model:
openclaw onboard --non-interactive --mode local \
  --auth-choice custom-api-key \
  --custom-base-url http://127.0.0.1:8080/v1 \
  --custom-model-id "OsaurusAI/Ornith-1.0-35B-MXFP4" \
  --custom-provider-id mlx-lm \
  --custom-compatibility openai \
  --custom-text-input \
  --accept-risk \
  --skip-health
Run OpenClaw
openclaw agent --local --agent main --message "Hello from Hugging Face"
Quick Links

Osaurus

Ornith-1.0-35B · MXFP4

Official OsaurusAI MXFP4 build of deepreinforce-ai/Ornith-1.0-35B (MIT) — a vision-language MoE on a Qwen3.5 hybrid backbone. Near-lossless 8-bit microscaled FP; runs on Apple Silicon via Osaurus / mlx.

  • ~18 GB (from ~70 GB bf16) bundle.
  • MXFP8: microscaled FP4 (group-size 32, 4-bit) on the language-model linear weights and routed experts; the vision tower is preserved at fp16, short-conv kernels and norms kept fp16.
  • Vision-language (image + text → text).

Architecture

Family qwen3_5_moe (hybrid)
Text layers 40 — 30 Gated-DeltaNet (linear-attention) + 10 full-attention
Experts 256 routed (stacked switch_mlp) · hidden 2048 · untied lm_head
Vision ViT tower (model.visual) preserved fp16
Cache hybrid (GDN state + KV for attention layers)

Usage

# text
python -m mlx_lm generate --model OsaurusAI/Ornith-1.0-35B-MXFP4 --prompt "Explain a hash map in two sentences."

For image+text, load in Osaurus or an MLX-VLM runtime that supports qwen3_5 vision.

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