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AI Data Engineer

Job in Bristol, Bristol County, BS1, England, UK
Listing for: Capgemini
Full Time position
Listed on 2026-08-11
Job specializations:
  • Software Development
    Data Engineering, AI Engineer (Applied/Software)
Job Description & How to Apply Below

This job is with Capgemini, an inclusive employer and a member of my Gwork – the largest global platform for the LGBTQ+ business community. Please do not contact the recruiter directly.

Who You Will Be Working With

As a Data Engineer at Capgemini, you'll design, build and operate reliable, scalable data pipelines and data products: the trusted foundations that power analytics, AI, GenAI and increasingly agentic systems. You'll work hands-on with modern data engineering tooling and cloud services to ingest, transform and serve data, and you'll prepare and govern the datasets that AI models and AI agents depend on to behave safely and correctly.

You'll also use AI-assisted engineering to accelerate your own delivery, while keeping clear human ownership of every outcome.

You'll be part of the Data Platforms team within the Insights and Data Global Practice, which has seen strong, sustained growth across a wide range of sectors. Data Platforms is home to Data Engineers, Platform Engineers, Solution Architects and Business Analysts driving our customers' digital and data transformation on modern cloud platforms. We specialise in the latest frameworks, reference architectures and technologies across AWS, Azure and GCP, and data platforms such as Databricks and Snowflake.

PLEASE NOTE:

Security Clearance:
To be successfully appointed to this role, must be eligible to obtain Security Check (SC) clearance or DV (Developed Vetting clearance).

To obtain SC clearance, the successful applicant must have resided continuously within the United Kingdom for the last 5 years, along with other criteria and requirements.
Throughout the recruitment process, you will be asked questions about your security clearance eligibility such as, but not limited to, country of residence and nationality.
Some posts are restricted to sole UK Nationals for security reasons; therefore, you may be asked about your citizenship in the application process.

The Focus of Your Role

You'll build and run the data products that modern AI depends on. That means classic, high-quality data engineering (batch and streaming pipelines, lakehouse and warehouse patterns, well-governed and auditable datasets), and the newer discipline of engineering data for AI and agents: retrieval pipelines, embeddings and vector stores, feature and context preparation, and the observability needed when the systems consuming your data are non-deterministic and can't simply be unit tested.

You'll build and run the data products that modern AI depends on. That means classic, high-quality data engineering (batch and streaming pipelines, lakehouse and warehouse patterns, well-governed and auditable datasets), and the newer discipline of engineering data for AI and agents: retrieval pipelines, embeddings and vector stores, feature and context preparation, and the observability needed when the systems consuming your data are non-deterministic and can't simply be unit tested.

What you’ll be doing:

  • You'll work with in agreed security and compliance boundaries throughout, which matters in the regulated and public sector environments we operate in.
  • Build and maintain data pipelines and data products. Use appropriate ETL/ELT and distributed processing to ingest, transform and curate trusted data in cloud storage and analytics platforms.
  • Engineer data for AI and agentic use cases. Prepare curated, governed datasets and features for analytics and ML; build retrieval and embedding pipelines (vector stores, chunking, metadata) that serve RAG and agent workflows; and help expose data to AI systems through patterns such as APIs and the Model Context Protocol (MCP).
  • Apply data modelling, quality and governance. Develop scalable models, apply validation and quality checks, and maintain lineage and documentation so data products are reliable and auditable. This matters even more when an AI agent, not just a human, is acting on them.
  • Build in observability for non-deterministic systems. Implement logging, alerting and SLAs for production pipelines, and contribute to evaluation and monitoring of AI-facing data and outputs (e.g. drift, retrieval quality, anomaly detection) with clear human review.
  • Us…
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