How to use from
OpenClaw
Start the llama.cpp server
# Install llama.cpp:
brew install llama.cpp
# Start a local OpenAI-compatible server:
llama serve -hf Neurona/qwen3.8-9b-cyber-exploit-agent:Q4_K_M
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 "Neurona/qwen3.8-9b-cyber-exploit-agent:Q4_K_M" \
  --custom-provider-id llama-cpp \
  --custom-compatibility openai \
  --custom-text-input \
  --accept-risk \
  --skip-health
Run OpenClaw
openclaw agent --local --agent main --message "Hello from Hugging Face"
Quick Links

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Check out the documentation for more information.

Training Data โ€” qwen3.8-9b-cyber-exploit-agent

This is the exact dataset the shipped model was trained on (QLoRA r16/a16, 3 epochs, best ckpt by eval loss).

  • train_all_v2_shipped.jsonl โ€” 395 samples: 280 CyberGym train-config tasks (8 blacklisted oss-fuzz IDs removed, Elfsong eval-200 never trained on) + 33 XRPL samples x3 (code-verified gates F1-F22/D/E/N, real issue texts, no maintainer comments in user turns) + 16 own labs/boundary samples.
  • trackA.jsonl โ€” Track A source samples (280).
  • labs/ + evidence/ โ€” 14 locally compiled and triggered labs (ASan logs, Python RCE markers). No invented crashes.
  • scripts/ โ€” full reproducible pipeline (dataset builders, SFT, merge, GGUF chain, eval gates).
  • inference_system.txt โ€” the training system prompt; use it at inference.
  • train_ids.json / eval_ids.json โ€” task id lists (train minus blacklist / eval holdout).

Dataset gate at build time: 0 blacklist ids, 0 user-turn leak markers, 0 schema violations, G1/G2/G6/G7/G8 verdicts pinned.

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Model size
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Architecture
qwen35
Hardware compatibility
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