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The fastest way to build production ML models, agentically.

Upload your data. Describe your goal. Walk away. Come back to deployed models, ranked experiments, and a notebook that documents each step.

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In active development — seeking collaborators & sponsors. Get in touch →

HOW IT WORKS

From raw data to a deployed modelin seven agent-driven phases.

01 / 07

Upload your data.Let the agent plan the work.

1.0 INGEST — real workspace preview

01 — CHAT

Talk to your data like a colleague. Voice, text, or keyboard — agent understands.

Ask in plain English. Watch tool calls stream in real time as the agent reads your tables, proposes transformations, and explains its reasoning.

⌘K to open chat in any tab

02 — PLAN

Turn intent into a training plan. Radio buttons, not prompt engineering.

Four cards constrain the plan before training begins — target column, task type, compute budget, interpretability — and each answer narrows the models, CV strategy, and feature pipeline the planner will execute.

Enter to advance

03 — NOTEBOOK

A real notebook, not a pipeline. Pandas, sklearn, Plotly — every cell editable.

Every preprocessing step, feature transform, and model fit lands as a Jupyter cell with real sklearn and pandas code. Edit a line, re-run the cell, or drop in your own — the kernel is yours.

shift+enter to run

Platform foundations

SANDBOX

Executes in isolation.

Every agent action runs in a Docker-sandboxed Python runtime with strict resource limits. Your data never leaves your environment.

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OPTIMIZATION

Finds the optimal model.

Optuna-backed hyperparameter search explores up to 200 configurations per run, pruning weak branches early. You get the winner, not the search.

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ORCHESTRATION

Sub-agents in lockstep.

LangGraph routes work between specialized agents for preprocessing, feature engineering, and training. A single loop, many hands.

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ECOSYSTEM

Plug into your data, your models, and OpenAI’s reasoning models.

Python programming language logo image/svg+xml pandas scikit-learnPlotly Group.svg Created using Figma 0.90 LangChain