At a Glance
- Tasks: Lead the development of innovative AI systems for public sector projects.
- Company: Join a multi-award-winning digital consultancy making a real difference.
- Benefits: Flexible working, competitive salary, and opportunities for professional growth.
- Other info: Diverse and inclusive workplace committed to innovation and sustainability.
- Why this job: Be at the forefront of AI technology and impact government services.
- Qualifications: Strong programming skills in Python and experience with AI/ML systems.
The predicted salary is between 63000 - 77000 £ per year.
About Scrumconnect Consulting
Scrumconnect Consulting is a multi-award-winning digital consultancy, recognised for delivering impactful and innovative technology solutions across UK government departments. We are passionate about user-centred design, agile delivery, and building digital services that make a real difference - and we're now scaling that expertise into large, high-stakes AI adoption programmes across the public sector.
We're looking for a Lead AI Engineer to be the hands-on technical builder at the core of a large-scale AI Operating Model programme for a central government department. Where the Lead Technical Architect sets direction, you turn it into working, production-grade systems - semantic search, RAG pipelines, and broader generative AI capability - integrated into complex Legacy and multi-cloud environments handling high-volume, sensitive public sector data.
You'll work inside a collaborative "Rainbow Team" alongside civil servants and the wider delivery team, staying close to the code while also mentoring engineers and helping build the internal capability the department needs to eventually run these systems without long-term reliance on external suppliers.
Design, build, and ship production AI components - RAG pipelines, retrieval and embedding infrastructure, orchestration logic, and integration layers - writing high-quality, tested, maintainable code and staying close to implementation rather than delegating it away.
Lead the engineering practice within your delivery team: set coding standards, review designs and pull requests, unblock technically complex problems, and mentor other engineers day to day.
Responsible AI in Practice
Implement the guardrails the Architect designs - bias mitigation checks, evaluation harnesses, human-in-the-loop review points - so that Responsible AI principles (ATRS alignment, NCSC "Secure by Design," meaningful human control) are enforced in the running system, not just on paper.
Build AI services to be secure-by-default and observable in production: logging, monitoring, alerting, and rollback paths appropriate for sensitive public-sector data and high-availability requirements.
Favour low-modality, resource-efficient designs where they meet the need - right-sizing models and infrastructure rather than defaulting to the largest/most expensive option - in line with the programme's Green AI and Net Zero commitments.
Loosely mapped to the Government Digital and Data (DDaT) framework, at Lead Engineer level:
- Coding and Scripting (Expert) - writing production-grade, well-tested code;
- Data Engineering (Practitioner) - building reliable pipelines to ingest, clean, and prepare data (including unstructured/Legacy sources) for AI consumption.
- DevOps/Continuous Delivery (Practitioner) - CI/CD pipelines, infrastructure-as-code, and automated deployment for AI workloads specifically (not just conventional web services).
- Testing & Evaluation (Practitioner) - beyond conventional unit/integration testing, building evaluation harnesses for AI system quality: retrieval accuracy, hallucination rate, bias/fairness checks.
- Agile Working (Practitioner) - delivering iteratively within a blended, multidisciplinary team including civil servants.
Given the scale of this programme, direct hands-on depth across the AI engineering stack is essential:
- Strong general-purpose programming (most commonly Python) applied to AI/ML systems
- Prompt engineering and systematic evaluation/guardrail tooling (hallucination detection, safety testing)
- LLMOps/MLOps - model versioning, deployment, monitoring, and rollback for AI services in production
- Cloud-native engineering across major providers (AWS, Azure, or GCP), including their AI/ML tooling
- Containerisation and infrastructure-as-code for repeatable, auditable deployments
- Secure-by-design engineering appropriate to sensitive public-sector data
- AWS/Azure/GCP certifications (associate or professional level)
- Prior delivery of AI or digital services within UK central government or wider public sector
- Experience fine-tuning or adapting open-source/foundation models for a specific domain
- Open-source contributions or active engagement in AI/ML engineering communities
- Experience designing for sustainability/Green IT commitments
The technological capabilities can span a wide range of AI and automation tools, including Virtual Assistants, Robotic Process Automation (RPA), Computer Vision, Natural Language Processing (NLP), Machine Learning, Deep Learning, Generative AI, Frontier LLMs, and Predictive AI.
Hybrid, based from Newcastle upon Tyne, with on-site attendance required for workshops, knowledge-transfer sessions, and onboarding. All production system and data access must be performed solely from within the UK.
Diversity and Inclusion - we believe diversity drives innovation and better outcomes, and we're committed to an inclusive environment where every individual is valued, respected, and supported. We welcome applications from candidates of all backgrounds, including women, people with disabilities, and diverse communities, as well as those seeking flexible working arrangements.
As a Disability Confident Level 1 employer, we provide reasonable adjustments throughout recruitment and employment to ensure equal opportunity for all.
This role requires BPSS (Baseline Personnel Security Standard) clearance - please flag in your application if you already hold clearance.
AI Lead Engineer in Newcastle upon Tyne employer: scrumconnect ltd
Scrumconnect Consulting is an exceptional employer, offering a dynamic and inclusive work culture that prioritises continuous learning and professional growth. As a Remote AWS DevOps Engineer, you'll have the opportunity to work on impactful digital transformation projects while collaborating with multidisciplinary teams in a supportive environment. With flexible working arrangements and a commitment to diversity, Scrumconnect empowers its employees to thrive and make meaningful contributions to both their careers and the communities they serve.
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We think this is how you could land AI Lead Engineer in Newcastle upon Tyne
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We think you need these skills to ace AI Lead Engineer in Newcastle upon Tyne
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Show off your coding skills:When applying for a software engineering role, it's super important to showcase your coding skills. Make sure your CV includes your tech stack, any relevant programming languages you’re comfortable with, and examples of projects you've worked on. If you have a GitHub profile, link it up! We love to see code in action.
Tailor your portfolio:For a full-time role, we’d expect to see some solid examples of your work in your portfolio. Make sure to include at least two or three projects that highlight your problem-solving skills and your ability to work with different technologies. Focus on the projects that are most relevant to the position at scrumconnect ltd.
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How to prepare for a job interview at scrumconnect ltd
✨Brush Up on Your Coding Skills
For a full-time software engineering role, it's crucial that we stay sharp with our coding abilities. Expect technical questions that might involve solving problems on the spot or discussing algorithms. Practise on platforms like LeetCode or HackerRank to get comfortable with the types of questions that often come up.
✨Know Your Tools and Frameworks
Make sure we’re well-acquainted with the tools and technologies listed in the job description. Familiarise ourselves with any specific frameworks or programming languages mentioned. If scrumconnect ltd uses React or Node.js, for instance, be ready to discuss how we’ve used them in previous projects or coursework.
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Bring along a portfolio that highlights our best work. This could be code samples, GitHub repositories, or any side projects we’ve built. Make sure we can talk through our thought process for each project, especially the challenges we faced and how we solved them—this shows our problem-solving skills in action.
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