Data Scientist - Physical Data / Predictions - Internship
—
Team Description The prediction team delivers objective and standardized physical performance metrics to assist in profiling, identifying, and benchmarking players, teams, and leagues globally. These metrics encompass physical data such as distance covered in speed zones, peak velocity, and acceleration profiles, as well as in-depth performance insights and context regarding both on-ball and off-ball actions. The physical data come from a fully automated, consistent, and scalable data collection process using single-camera video, overcoming player visibility limitations. This enables objective measurement of each player’s actions, making it easy to compare and evaluate player capabilities across several leagues. Job description We are looking for an intern to join the Physical Data team within the Prediction group. The internship will focus on developing new data-driven approaches to better understand and predict player physical performance and progression. The project may explore several research directions, including: • Modeling player physical progression/development over time. • Design of simplified and robust data quality frameworks. • Prediction of performance adaptation when moving between competitions or leagues, based on physical demands and intensity profiles. • Integration of body pose information to enrich physical event detection and performance metrics. The intern will contribute across the full pipeline: data exploration, metric design, modeling, validation, and experimentation, with a strong focus on practical impact and real-world deployment. This internship offers hands-on experience at the intersection of sports science, computer vision, and applied data science, working on research topics that directly translate into production tools used by professional organizations.
| Skill | Source | Confidence |
|---|---|---|
| Data Wrangling | llm_hard |
80%
|
| Exploratory Data Analysis (EDA) | llm_hard |
80%
|
| Skill | Source | Confidence |
|---|---|---|
| Research Skills | llm_soft |
100%
|
| Collaboration | llm_soft |
80%
|
| Problem-Solving | llm_soft |
80%
|
| Analytical Thinking | llm_soft |
80%
|
| Continuous Learning | llm_soft |
80%
|
| Query | Country | Status | Response ms | Created |
|---|---|---|---|---|
| Data Scientist - Physical Data / Predictions - Internship | extracted | 3751 | 2026-03-22 03:23 | |
| Data Scientist - Physical Data / Predictions - Internship | classified | 544 | 2026-03-21 21:18 | |
| trainee data scientist in Paris | fr | duplicate | 5883 | 2026-03-21 17:23 |
| trainee data scientist in France | fr | processed | 5886 | 2026-03-21 17:23 |
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"job_description": "Team Description\n\nThe prediction team delivers objective and standardized physical performance metrics to assist in profiling, identifying, and benchmarking players, teams, and leagues globally. These metrics encompass physical data such as distance covered in speed zones, peak velocity, and acceleration profiles, as well as in-depth performance insights and context regarding both on-ball and off-ball actions.\n\nThe physical data come from a fully automated, consistent, and scalable data collection process using single-camera video, overcoming player visibility limitations. This enables objective measurement of each player’s actions, making it easy to compare and evaluate player capabilities across several leagues.\n\nJob description\n\nWe are looking for an intern to join the Physical Data team within the Prediction group. The internship will focus on developing new data-driven approaches to better understand and predict player physical performance and progression.\n\nThe project may explore several research directions, including:\n• Modeling player physical progression/development over time.\n• Design of simplified and robust data quality frameworks.\n• Prediction of performance adaptation when moving between competitions or leagues, based on physical demands and intensity profiles.\n• Integration of body pose information to enrich physical event detection and performance metrics.\n\nThe intern will contribute across the full pipeline: data exploration, metric design, modeling, validation, and experimentation, with a strong focus on practical impact and real-world deployment.\n\nThis internship offers hands-on experience at the intersection of sports science, computer vision, and applied data science, working on research topics that directly translate into production tools used by professional organizations.",
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