GT was founded in 2019 by a former Apple, Nest, and Google executive. GT’s mission is to connect the world’s best talent with product careers offered by high-growth companies in the UK, USA, Canada, Germany, and the Netherlands. Our clients operate in industries like healthcare, life sciences, fintech, retail, e-commerce, finance and many more - giving our team exposure to real-world, high-impact projects.
About the Role
We’re looking for a Senior Data Scientist / ML Engineer to join a UK-based client in the healthcare and pharmacy domain.
The role combines forecasting and machine learning with end-to-end ownership of solution delivery, from project discovery and stakeholder collaboration through model development, deployment, and productionisation.
Location: Nottingham, UK
Office attendance: 1-2 days per week in the Nottingham office.
Project duration: 6 months (with possible extension).
Project Details: The project focuses on developing a forecasting solution for a large healthcare network. It uses historical clinic and marketing data to predict clinic usage and staffing needs, helping optimize scheduling and resource allocation. The goal is to build a scalable, data-driven platform that improves operational efficiency.
Responsibilities:
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Design, train, and deploy ML models for time-series forecasting and related data tasks
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Build and maintain data pipelines using cloud-native tools (AWS, GCP, or Azure)
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Develop and optimize forecasting models (Prophet, ARIMA, LSTM, TimeGPT)
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Collaborate with data, product, and cloud engineers to deliver reliable, scalable solutions
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Participate in different stages of the project lifecycle - from discovery and PoC to production deployment, presenting your work to stakeholders
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Work closely with business stakeholders and SMEs to gather requirements, shape solutions, and drive project discovery
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Communicate modelling approaches, assumptions, and results to both technical and non-technical audiences
Essential knowledge, skills & experience (must-have):
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4+ years of commercial experience in Data Science / Machine Learning
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Hands-on experience with:
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Databricks
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Notebooks
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PySpark
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Workflows
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Deployment through Asset Bundles
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Proven experience building, deploying, and maintaining production ML solutions
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Broad experience across multiple ML domains, including:
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Forecasting / Time-Series Modelling
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Regression
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Classification
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Gradient Boosting models (e.g. XGBoost, LightGBM)
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Strong Python skills (Pandas, NumPy, scikit-learn, PyTorch)
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Experience with model evaluation, performance monitoring, and accuracy metrics
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Version control (Git)
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Experience working with cloud environments (Azure preferred, AWS/GCP also considered)
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SQL
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Fluent English
Nice-to-have:
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Retail or similar consumer-facing industry experience
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Azure DevOps:
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Repos
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Boards
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Pipelines
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Experience with Databricks model training and inference workflows
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Databricks Apps and Lakebase
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Experience with RAG pipelines
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Experience with vector databases (Weaviate, Milvus)
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Familiarity with LLM evaluation frameworks (e.g. DeepEval)
Soft Skills
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Strong sense of ownership and accountability
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Strong stakeholder management skills
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Proactive attitude and ability to work independently
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Clear and confident communication with both tech and non-tech stakeholders
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Comfortable working in ambiguity and helping define requirements
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Strategic thinking and focus on business impact
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Team player
Interview Steps
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GT interview with Recruiter
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Technical interview
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Final interview
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Reference check
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Security check
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