Pearson

Data Scientist

Pearson  •  London, GB (Hybrid)  •  12 hours ago
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Job Description

Senior Data Scientist - Enterprise Learning & Skills (ELS), Pearson

About Pearson and ELS

Pearson is the world’s learning company; our mission is to help people make progress in their lives through learning. You’ll join the Enterprise Learning & Skills (ELS) area supporting the understanding and development of skills in a range of contexts.

Our culture emphasizes belonging, diverse viewpoints, and a supportive environment where people can do their best work.

The role

We’re hiring a senior data scientist to help stand up and scale a shared data science capability that partners with stream-aligned teams.

You’ll report into the Data Science Team Manager and lead endtoend DS/ML projects, shape standards, mentor teammates, and ship models into production, balancing quick wins with robust engineering.

In particular, we are currently exploring ideas around using AI and OCR to process documents and learner work, and to validate marking consistency in a range of qualifications.

Tech focus: Python and AWS (or equivalents in Azure or GCP), with handson work across classical ML and modern LLM/RAG systems using services like Amazon SageMaker and Bedrock.

What you’ll do

  • Partner with stakeholders across the business to explore highimpact opportunities.
  • Own the full lifecycle: problem framing, data discovery, feature engineering, modelling, evaluation, deployment, monitoring, and iteration.
  • Build and productionize LLM features where appropriate (retrievalaugmented generation, evaluation, safety guardrails, cost/latency optimization) on AWS.
  • Contribute to DS/ML standards: experimentation, model governance, documentation, and reproducibility.
  • Mentor junior scientists, work with external contractors and collaborate closely with data engineering on pipelines and data quality.

What you’ll bring

  • A proven track record delivering projects in a Data Science or AI
  • Experience deploying models to production,understanding of deployment options and tradeoffs.
  • Practical LLM experience: prompting, finetuning or adapter methods, and building RAG systems.
  • Orchestration: for example LangChain for pipelines/agents.
  • RAG best practices and evaluation workflows (e.g., agentic/RAG patterns on SageMaker).
  • Comfortable choosing the right technique for the job (from baselines to advanced models), with an emphasis on measurable impact and maintainability.
  • Clear communication with nontechnical partners; ability to translate outcomes to business metrics.
  • Strong Python for data science and ML; fluency with SQL.
  • A degree in a relevant discipline, ideally with further post graduate qualification.
  • Right to work in the UK

Nice to have

Experience in one or more of our domains (assessment/psychometrics, workforce skills/ontologies, recommendations, fraud detection).

Familiarity with MLOps practices (CI/CD for ML, experiment tracking, data/version control) in a cloud environment.

How we work at Pearson

Purposedriven, learnerfirst; we prize curiosity, decency, and accountability, and we work to ensure everyone belongs and can grow their career.

ELS roles span multiple geographies and partner teams; collaboration and asynchronous communication are essential.

This is a hybrid role, located in Central London, with an expectation of 1-2 days in the office each week.

Pearson

About Pearson

Our purpose is simple: to help people realize the life they imagine through learning. We believe that every learning opportunity is a chance for a personal breakthrough. That’s why our c. 20,000 Pearson employees are committed to creating vibrant and enriching learning experiences designed for real-life impact. We are the world’s leading learning company, serving customers in nearly 200 countries with digital content, assessments, qualifications, and data. For us, learning isn’t just what we do. It's who we are.

Industry
Education & Training
Company Size
5,001-10,000 employees
Headquarters
London, GB
Year Founded
Unknown
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