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What Suraj demonstrated

Built an end-to-end TEY prediction workflow for gas-turbine data using leakage-free sensor features and a genuine time-based holdout. Benchmarked LinearRegression against a tuned RandomForest, evaluated with held-out MAE/RMSE/R², and documented residual behavior and operating limits in a model card. The work shows solid judgment about data leakage, validation discipline, and communicating model performance to non-technical stakeholders.

  • Leakage-Free Feature Engineering
  • Honest Held-Out Evaluation
  • Residual Diagnostics
  • Plain-Language Model Communication

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