
In June 2025, Landon Watts developed a comprehensive cross-sport analytics platform within the jdpipping/summer-lab repository, delivering end-to-end data science workflows for basketball, football, baseball, and Spotify datasets. He engineered features, predictive models, and visualizations using R, SQL, and Stan, applying techniques such as Bayesian inference, clustering, and regression analysis. Landon established a formal experimentation lab framework to ensure reproducibility and maintainability, consolidating model evaluation scripts and standardizing development practices. His work enabled data-driven decision support and accelerated experimentation cycles, providing a robust foundation for ongoing sports analytics initiatives and facilitating reproducible research across multiple domains and datasets.
June 2025 monthly summary for jdpipping/summer-lab: Delivered a comprehensive cross-sport analytics platform, established a formal experimentation lab, and advanced data science experiments. The work delivered end-to-end analytics—from feature engineering to predictions and visualizations—across basketball, football, baseball, and Spotify data, enabling data-driven insights and faster decision-making. Built a cohesive framework to evaluate models and ensure reproducibility, maintainability, and business value across sports analytics initiatives.
June 2025 monthly summary for jdpipping/summer-lab: Delivered a comprehensive cross-sport analytics platform, established a formal experimentation lab, and advanced data science experiments. The work delivered end-to-end analytics—from feature engineering to predictions and visualizations—across basketball, football, baseball, and Spotify data, enabling data-driven insights and faster decision-making. Built a cohesive framework to evaluate models and ensure reproducibility, maintainability, and business value across sports analytics initiatives.

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