QA Tech Analyst FTC
Listed on 2026-09-12
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Quality Assurance - QA/QC
IT QA Tester / Automation, AI QA / Validation Engineer -
IT/Tech
IT QA Tester / Automation
Closing Date for Applications
22nd September 2026
Salary Scale: £44,389 - £45,000 per annum
What is the purpose of this job?RDG’s Quality Assurance Practice is looking for a Technical QA AI Analyst to join the Quasar team. This is a pivotal role blending traditional technical QA — building and documenting system knowledge in the format prescribed by Quasar, maintaining clear traceability between Architectural and QA components, and conducting technical and acceptance testing — with assurance of the AI-enabled solutions being adopted across RDG’s systems.
The role will define how AI solutions are tested and assured: validating LLM-based features, ML models and retrieval-augmented (RAG) pipelines, evaluating AI outputs for accuracy, relevance, consistency and safety, detecting hallucinations and bias, assuring data quality, and testing the robustness and guardrails that keep AI features safe for the railway and its customers.
As the rail industry undergoes considerable change, with transformational programmes across smart ticketing and digital services and a growing adoption of AI across RDG, this role is pivotal in ensuring both technical systems and AI solutions are rigorously assured before release. The role will liaise with Service Assurance, Architecture, CCI, data and technology teams, and technical and management teams from TOCs, suppliers and other industry stakeholders.
Whatcan I expect to do in this job?
This isn’t an exhaustive list, but things you can expect to be involved with include:
- Build and document system knowledge in Confluence in the Quasar-prescribed format — process diagrams, mind maps and requirements that make system components, end-to-end data flows and dependencies clear to all team members.
- Own requirement traceability for assigned systems – baseline and re-baseline traceability matrices, keep coverage accurate through Connect ALL mappings, and support sign-off of requirement acceptance for Quasar.
- Develop and execute test strategies for AI-enabled functionality (LLM features, ML models, RAG pipelines), with acceptance criteria and test oracles suited to non-deterministic systems.
- Evaluate AI outputs for accuracy, relevance, consistency and safety – identifying hallucinations, bias and fairness issues, and managing them through standard defect management.
- Validate AI/ML performance using appropriate metrics (accuracy, precision, recall, F1), assure training and evaluation data quality, and monitor for data drift.
- Conduct adversarial and robustness testing on AI features – red-teaming, prompt injection, edge cases – and validate guardrails and human-in-the-loop controls.
- Contribute to AI governance evidence – risk assessments, explainability documentation, model validation records, and post-deployment monitoring of AI-enabled services.
- Create and deliver all key QA deliverables – test plans, strategies, scope, test objective matrices, test cases, reports and defect management – across waterfall and agile projects.
- Maintain and build functional and non-functional testing using approved automation tools – Selenium, Robot Framework, Python, ReadyAPI, Sauce Labs, Load Runner – automating regression to improve time to market.
- Manage automation scripts and code bases through Git Hub and Git Lab, supporting testing in a CI/CD and Dev Ops model, and use AI tools to augment test generation, coverage and productivity.
- Ensure supplier and third-party test delivery (including AI features) is in line with RDG policy and standards, working collaboratively with vendors for release and product quality.
- Report daily testing status to the Test Manager and stakeholders, escape delays proactively, and share knowledge across the team on technical and AI testing subjects.
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