Notebooks
Notebooks that run against production data
The data in your notebooks should match what runs in production. Chalk Notebooks run on a hosted kernel inside your own cloud and query the same deployment that serves your models. Point a cell at a branch to try a change, and SQL results stay cached between runs.

Explore Chalk Notebooks
Live production context
Query the same data that serves your models.
Features pre-loaded
Your deployment's features are already there when the notebook opens.
Branch-scoped cells
Point a client or a query cell at a live branch instead of production.
Typed cells
Python, SQL, online query, offline query, inputs and tables.
Cached SQL results
Re-run a cell without re-running the warehouse query.
Runs on a hosted kernel
Sandboxed compute in your own cloud.
Chalk is a key component of our underwriting pipeline, increasing velocity across our engineering, risk, and data science teams. Chalk branches let us test new code against production pipelines without disrupting them, enabling us to quickly iterate on new features and enhancements without a PR. This allows us to offer unmatched capital products with more flexibility than other offerings in the market.

Close the notebook-to-production gap
The kernel talks to a real deployment, so a cell reads the features production reads. Point it at a branch to try a change first, then at production once it holds.
Chalk Notebooks
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Learn how to give agents context for evals and production
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How Chalk filled 40+ roles in one quarter without lowering the bar
Introducing Chalk Notebooks
Read more about our latest product announcement
Prototype with real feature data
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