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    openai

    jupyter-notebook

    openai/jupyter-notebook
    Coding
    7,309
    40 installs

    About

    SKILL.md

    Install

    Install via Skills CLI

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    About

    Use when the user asks to create, scaffold, or edit Jupyter notebooks (.ipynb) for experiments, explorations, or tutorials; prefer the bundled templates and run the helper script new_notebook.py...

    SKILL.md

    Jupyter Notebook Skill

    Create clean, reproducible Jupyter notebooks for two primary modes:

    • Experiments and exploratory analysis
    • Tutorials and teaching-oriented walkthroughs

    Prefer the bundled templates and the helper script for consistent structure and fewer JSON mistakes.

    When to use

    • Create a new .ipynb notebook from scratch.
    • Convert rough notes or scripts into a structured notebook.
    • Refactor an existing notebook to be more reproducible and skimmable.
    • Build experiments or tutorials that will be read or re-run by other people.

    Decision tree

    • If the request is exploratory, analytical, or hypothesis-driven, choose experiment.
    • If the request is instructional, step-by-step, or audience-specific, choose tutorial.
    • If editing an existing notebook, treat it as a refactor: preserve intent and improve structure.

    Skill path (set once)

    export CODEX_HOME="${CODEX_HOME:-$HOME/.codex}"
    export JUPYTER_NOTEBOOK_CLI="$CODEX_HOME/skills/jupyter-notebook/scripts/new_notebook.py"
    

    User-scoped skills install under $CODEX_HOME/skills (default: ~/.codex/skills).

    Workflow

    1. Lock the intent. Identify the notebook kind: experiment or tutorial. Capture the objective, audience, and what "done" looks like.

    2. Scaffold from the template. Use the helper script to avoid hand-authoring raw notebook JSON.

    uv run --python 3.12 python "$JUPYTER_NOTEBOOK_CLI" \
      --kind experiment \
      --title "Compare prompt variants" \
      --out output/jupyter-notebook/compare-prompt-variants.ipynb
    
    uv run --python 3.12 python "$JUPYTER_NOTEBOOK_CLI" \
      --kind tutorial \
      --title "Intro to embeddings" \
      --out output/jupyter-notebook/intro-to-embeddings.ipynb
    
    1. Fill the notebook with small, runnable steps. Keep each code cell focused on one step. Add short markdown cells that explain the purpose and expected result. Avoid large, noisy outputs when a short summary works.

    2. Apply the right pattern. For experiments, follow references/experiment-patterns.md. For tutorials, follow references/tutorial-patterns.md.

    3. Edit safely when working with existing notebooks. Preserve the notebook structure; avoid reordering cells unless it improves the top-to-bottom story. Prefer targeted edits over full rewrites. If you must edit raw JSON, review references/notebook-structure.md first.

    4. Validate the result. Run the notebook top-to-bottom when the environment allows. If execution is not possible, say so explicitly and call out how to validate locally. Use the final pass checklist in references/quality-checklist.md.

    Templates and helper script

    • Templates live in assets/experiment-template.ipynb and assets/tutorial-template.ipynb.
    • The helper script loads a template, updates the title cell, and writes a notebook.

    Script path:

    • $JUPYTER_NOTEBOOK_CLI (installed default: $CODEX_HOME/skills/jupyter-notebook/scripts/new_notebook.py)

    Temp and output conventions

    • Use tmp/jupyter-notebook/ for intermediate files; delete when done.
    • Write final artifacts under output/jupyter-notebook/ when working in this repo.
    • Use stable, descriptive filenames (for example, ablation-temperature.ipynb).

    Dependencies (install only when needed)

    Prefer uv for dependency management.

    Optional Python packages for local notebook execution:

    uv pip install jupyterlab ipykernel
    

    The bundled scaffold script uses only the Python standard library and does not require extra dependencies.

    Environment

    No required environment variables.

    Reference map

    • references/experiment-patterns.md: experiment structure and heuristics.
    • references/tutorial-patterns.md: tutorial structure and teaching flow.
    • references/notebook-structure.md: notebook JSON shape and safe editing rules.
    • references/quality-checklist.md: final validation checklist.
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