Public MLB model results, updated daily.
MLB Intelligence is a public audit trail for a model-driven baseball betting workflow. Start with live ROI, calibration, market comparison, and recent settled wagers.
Visitors land on the story, then move immediately into live metrics and proof.
Execution controls, account state, and workflow tooling stay behind approval.
The site is designed to make the model legible instead of hiding behind vague promises.
A public record of a model-driven MLB betting operation.
The point of this site is not to spray picks. It is to make the workflow legible: where the model has been right, where it has been wrong, and how the public results compare with market pricing over time.
Visitors can explore the analytics layer first. Approved users can then move into the private dashboard to manage live betting controls, user-specific settings, and linked account execution.
How it works
The system starts with baseball data, turns it into probability estimates, compares those estimates with market prices, and then tracks the outcome in public.
Data collection
Game history, team form, player inputs, weather, and pricing feeds are collected into one repeatable pipeline.
Model prediction
Probability estimates are generated from engineered features and checked against historical calibration, not just raw accuracy.
Market analysis
The model view is compared with market-implied pricing to surface situations where the forecast and the market meaningfully diverge.
Risk management
Position sizing and account-level controls determine whether a signal turns into a live order and how much capital is at risk.
Model methodology
Built around probability estimation, calibration, and market comparison rather than one-off pick generation.
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Data sources
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Feature engineering
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ML models
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Predictions
Public metrics, not marketing claims.
These headline figures are pulled from the live public endpoints that also feed the analytics page. If you want the full breakdown, the public dashboard goes deeper.
Betting performance
Live results from model recommendationsModel accuracy
Prediction accuracy vs marketAbout this project
This site is meant to present the system like a serious analytics product: transparent public reporting on one side, controlled operational tooling on the other.
The public layer exists so visitors can audit the process and the outcomes. The private layer exists for approved users who need the operational controls behind it.
Interested in the private workspace?
Access requests are reviewed before private dashboard access is enabled.