How to use from
SGLang
Install from pip and serve model
# Install SGLang from pip:
pip install sglang
# Start the SGLang server:
python3 -m sglang.launch_server \
    --model-path "zero9tech/Qwen3-4B-Data-Science-Insight-7.6K" \
    --host 0.0.0.0 \
    --port 30000
# Call the server using curl (OpenAI-compatible API):
curl -X POST "http://localhost:30000/v1/chat/completions" \
	-H "Content-Type: application/json" \
	--data '{
		"model": "zero9tech/Qwen3-4B-Data-Science-Insight-7.6K",
		"messages": [
			{
				"role": "user",
				"content": "What is the capital of France?"
			}
		]
	}'
Use Docker images
docker run --gpus all \
    --shm-size 32g \
    -p 30000:30000 \
    -v ~/.cache/huggingface:/root/.cache/huggingface \
    --env "HF_TOKEN=<secret>" \
    --ipc=host \
    lmsysorg/sglang:latest \
    python3 -m sglang.launch_server \
        --model-path "zero9tech/Qwen3-4B-Data-Science-Insight-7.6K" \
        --host 0.0.0.0 \
        --port 30000
# Call the server using curl (OpenAI-compatible API):
curl -X POST "http://localhost:30000/v1/chat/completions" \
	-H "Content-Type: application/json" \
	--data '{
		"model": "zero9tech/Qwen3-4B-Data-Science-Insight-7.6K",
		"messages": [
			{
				"role": "user",
				"content": "What is the capital of France?"
			}
		]
	}'
Quick Links

Qwen3-4B-Data-Science-Insight-7.6K

This model is tuned for decision-oriented data mining and applied data science assistance.

Training Setup

  1. Domain SFT: murataksit34/data-scientist-dialog-8k-en.

Dataset Test Highlights

  • Total records: 7,624
  • Split: train: 6,099 · test: 1,525
  • assistant_first_unique_ratio: 0.9491
  • assistant_final_unique_ratio: 0.9906

Usage Note

Model behavior is optimized for decision-focused responses (method choice, alternatives, risk signals, validation planning).

Copyright

Copyright (c) Zero9 Tech

License

Apache-2.0

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Dataset used to train zero9tech/Qwen3-4B-Data-Science-Insight-7.6K