W3Global

Data Scientist

⭐ - Featured Role | Apply direct with Data Freelance Hub
This role is for a Data Scientist in Osterley, UK, with a contract duration of 3 to 6 months. Required skills include 12+ years of experience in sports data-driven ML systems, advanced Python, MLOps, and cloud-based AI systems.
🌎 - Country
United States
💱 - Currency
$ USD
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💰 - Day rate
300
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🗓️ - Date
April 11, 2026
🕒 - Duration
3 to 6 months
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🏝️ - Location
Hybrid
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📄 - Contract
Unknown
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🔒 - Security
Unknown
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📍 - Location detailed
Isleworth, England, United Kingdom
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🧠 - Skills detailed
#Deployment #Data Ingestion #Data Processing #Metadata #AI (Artificial Intelligence) #Cloud #Data Science #TensorFlow #Datasets #"ETL (Extract #Transform #Load)" #ML (Machine Learning) #Monitoring #Python #Scala #Leadership #Statistics #PyTorch #A/B Testing
Role description
Role: Data Scientist Work location (City): Osterley, UK Duration of the contract: 3 to 6 Months (Extendable) No of positions: 1 Hybrid work model: Min 4 days from client location Experience Range: 12+ years What You'll Do • Lead the endtoend development of AI solutions using Computer Vision, Machine Learning, Generative AI, and data science to enable capabilities such as automated sports metadata generation and detection of key events in live content and data streams. • Generate actionable insights for player performance, contextual statistics, and injury risk by designing models with embedded responsible and ethical AI principles from design through deployment. • Integrate modeldriven insights into personalisation engines, tailoring recommendations based on favourite teams, players, match context, and other signals while ensuring transparency, fairness, and appropriate use of data. • Define advanced experimental designs, lead A/B testing, develop and maintain metrics and dashboards, establish robust MLOps practices, and own endtoend productionisation from data ingestion through deployment and ongoing model monitoring. • Design, architect, and operate lowlatency, highly reliable cloudbased AI systems for live sports scenarios, ensuring resilient performance during peak traffic, responsible model behaviour in real time, and an optimal balance between cost, latency, and productionscale performance. • Proven extensive leadlevel engineering experience delivering sports insights or sports data-driven ML systems, with clear ownership of technical direction, mentoring, and delivery. • Deep understanding of sports data, including handson experience working with event data, tracking data, or other highvolume sports datasets, and converting these into actionable analytical or predictive insights. • Working knowledge of modern ML techniques, including Generative AI, and how emergent models can extract insights from multimodal sports data (e.g., numerical, spatial, video, or metadata). • Advanced Python expertise with strong handson use of ML/DL frameworks (e.g.,PyTorch, TensorFlow), including taking models from experimentation into production model serving. • Endtoend MLOps experience, including CI/CD for ML, experiment tracking, model registries, drift detection, automated retraining, and infrastructureascode practices. • Proven technical leadership experience including mentoring and guiding Senior and Mid- Level Data Scientists both in their day to day work and career development. Experience of working in a fast-changing environment is vital demonstrating adaptability and ability to support the team through times of uncertainty, pivoting as necessary. • Experience designing scalable, lowlatency architectures, including realtime or nearrealtime data processing (e.g., streaming systems) suitable for live or rapidly evolving sports use cases. • Strong communication skills with the ability to inspire, guide, and clearly articulate complex strategies to executives, cross-functional teams, and stakeholders.