We are seeking driven Data Scientists across all seniority levels who combine deep technical expertise with a strong focus on delivering results.
In this role, you will lead projects from conception throughdevelopment, deployment, and iteration, translating complex data science intopractical, high-impact solutions that meet the demands of a fast-moving mediabusiness. You will be instrumental in scaling our machine learningcapabilities, strengthening our AI-driven data infrastructure, and informingstrategic decisions across multiple business lines.
This is an exciting opportunity to shape high-impact projects, working closely with senior leadership and delivering tangible value to our core media business.
Roles & Responsibilities
Cross-Functional Partnership
Serve as a strategic partner to business teams, proactively identifying opportunities where data science can add value and drive competitive advantage
Work closely with business stakeholders to translate complex challenges into clearly defined, high-impact data science initiatives
Communicate concepts and technical findings with clarity to non-technical audiences, ensuring stakeholder alignment and informed decision-making
Audience Growth & Engagement
Ensure that data science outputs have practical, measurable applications, consistently connecting analytical insights to strategies that drive meaningful audience growth
Leverage behavioural data to uncover actionable patterns that inform content strategy, product decisions, and marketing effectiveness across our media platforms
Develop and refine personalisation models, recommendation engines, and user profiling capabilities that deepen audience engagement
Solution Development & Delivery
Design, develop, and maintain robust machine learning models that drive business growth
Lead data science solutions across their full lifecycle, from initial exploration and hypothesis testing through to model deployment, production monitoring, and continuous iteration
Define and track key metrics to evaluate the effectiveness of data science initiatives
Devise and implement intelligent automation solutions, with a focus on integrating advanced AI into our core data stack
Collaborate with data engineering teams to design and maintain reliable data pipelines that support model training, evaluation, and deployment
Capability & Knowledge Development
Stay abreast of the latest developments in data science, machine learning and AI, evaluating their practical applicability to our business context
Conduct applied research to test new approaches, validate hypotheses, and push the boundaries of what our data science capabilities can deliver
Establish robust monitoring frameworks that detect model drift, data anomalies, and performance degradation, enabling timely intervention
Champion good data science practices, including model versioning, documentation and governance to build a strong and sustainable data science practice
Share knowledge and findings across the team, fostering a culture of intellectual curiosity and continuous learning
Who are we looking for?
Educational Qualifications
An advanced degree (Master's or PhD) in Computer Science, Machine Learning, Operations Research, Statistics, Mathematics or related field
Candidates without a formal advanced degree who can demonstrate equivalent depth through a strong professional track record or published research are equally encouraged to apply
Industry Experience
Minimum 6 years of hands-on experience building and deploying production-grade machine learning models with measurable business impact
Proven ability to navigate ambiguity, take ownership, and deliver scalable solutions in cross-functional, fast-moving commercial environments
Demonstrated expertise in one or more specialised domains, including recommendation systems and personalisation engines, natural language processing, large language models and retrieval-augmented generation (RAG), knowledge graphs, or time-series forecasting, is highly desired. Candidates who have successfully taken these capabilities from experimentation through to production at scale will be preferred.
Experience in the media or internet industry is an added advantage
Technical Background
Strong command of Python and SQL, with hands-on proficiency across core data science libraries and at least one deep learning framework. Coding tests may be required.
Solid grounding in machine learning fundamentals from evaluation metrics, feature engineering, regularisation to model selection, with practical expertise to navigate the full ML lifecycle from data ingestion through to production monitoring
Comfortable working with complex, high-dimensional datasets and applying statistical rigour to ensure findings are robust, reproducible, and actionable
Familiarity with large-scale data processing tools, with practical experience deploying and operationalising models via MLOps tooling
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