Full-Time

Senior AI Engineer

FTC

Deadline 8/29/26
M&G

M&G

1,001-5,000 employees

Publicly traded savings and investments company

No salary listed

Edinburgh, UK + 2 more

More locations: Stirling, UK | Reading, UK

Remote

Category
Software Engineering (1)
Required Skills
LLM
Kubernetes
MLOps
Microsoft Azure
Python
TensorFlow
PyTorch
Machine Learning
Java
OpenAI
Data Engineering
Docker
RAG
Version Control
C#
Risk Management
LangGraph
Observability
REST APIs
LangChain
Data Governance
DevOps
Databricks
Data Analysis

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Requirements
  • Strong hands-on experience in machine learning, generative AI, large language models, agentic AI, and decision intelligence systems.
  • Experience designing and implementing retrieval-augmented generation, prompt engineering frameworks, AI agents and copilots, vector databases and embeddings, and enterprise search and knowledge retrieval systems.
  • Strong understanding of model evaluation, model selection, guardrail design, responsible AI, and AI governance.
  • Strong software engineering experience using Python, Java, C#, or similar languages.
  • Experience building production-grade applications, application programming interfaces, and cloud-native services.
  • Experience applying automated testing, continuous integration and continuous delivery, infrastructure-as-code, and DevSecOps practices.
  • Knowledge of containerisation and orchestration technologies such as Docker and Kubernetes.
  • Understanding of enterprise integration patterns and API-first architectures.
  • Experience with one or more of OpenAI, Anthropic, Google Gemini, Microsoft Foundry, Azure AI Services, Azure Machine Learning, Databricks, LangChain, LangGraph, Semantic Kernel, PyTorch, TensorFlow, M365 Copilot, Copilot Studio, GitHub Enterprise tooling, GitHub Copilot, Hugging Face, and Azure DevOps.
  • Experience with cloud platforms, preferably Microsoft Azure.
  • Experience delivering solutions within regulated environments such as insurance, pensions, investments, banking, or asset management.
  • Understanding of governance, operational resilience, security, auditability, risk management, and data privacy requirements.
  • Experience building solutions that meet regulatory and responsible AI expectations.
  • Strong analytical and problem-solving capability.
  • Excellent communication and stakeholder management skills.
  • Ability to explain complex technical concepts to technical and non-technical audiences.
  • A product- and outcome-oriented mindset focused on delivering measurable value.
  • Experience working in agile, cross-functional teams.
Responsibilities
  • Partner with the AI Product Owner during discovery activities to assess feasibility, shape solution options, and contribute to product roadmaps and prioritisation.
  • Translate business challenges into scalable technical solutions through minimum viable products, proofs of concept, and production-ready implementations.
  • Contribute to product vision, user stories, acceptance criteria, and technical architecture decisions.
  • Support experimentation and rapid innovation while maintaining engineering quality and governance standards.
  • Design, develop, deploy, and optimise AI-powered applications, APIs, copilots, agents, and intelligent automation solutions.
  • Develop retrieval-augmented generation architectures, prompt engineering frameworks, vector search solutions, and enterprise knowledge retrieval capabilities.
  • Integrate large language models into enterprise applications, business processes, and engineering workflows.
  • Build and maintain agentic AI solutions using orchestration frameworks such as LangChain and Semantic Kernel.
  • Evaluate emerging AI technologies and recommend appropriate adoption strategies.
  • Implement evaluation frameworks and guardrails to measure model quality, safety, reliability, and business effectiveness.
  • Apply modern software engineering principles including automated testing, source control, continuous integration and continuous delivery, infrastructure-as-code, observability, resilience, and security-by-design.
  • Build scalable cloud-native applications, APIs, microservices, and data pipelines using modern engineering frameworks and patterns.
  • Collaborate with platform engineering teams to enable AI capabilities across enterprise platforms and developer ecosystems.
  • Develop reusable frameworks, libraries, patterns, and standards to accelerate AI adoption across engineering teams.
  • Contribute to AI-assisted software development practices and developer productivity initiatives.
  • Implement MLOps practices supporting model lifecycle management, deployment automation, testing, monitoring, and continuous improvement.
  • Build and maintain observability, telemetry, and analytics capabilities for AI solutions.
  • Monitor model performance, usage patterns, and business outcomes using defined KPIs and OKRs.
  • Implement model evaluation, drift detection, performance monitoring, and AI safety controls.
  • Investigate and resolve production issues to ensure reliability, resilience, and operational effectiveness.
  • Collaborate with Data Engineering teams to prepare, manage, and govern high-quality datasets for AI solutions.
  • Ensure all AI solutions comply with enterprise security, governance, privacy, risk, regulatory, and responsible AI requirements.
  • Support explainability, auditability, lineage, and transparency requirements for AI systems.
  • Develop and implement AI guardrails and governance controls throughout the full AI lifecycle.
  • Work with data governance and cataloguing platforms such as Microsoft Purview and Databricks Unity Catalog.
  • Build AI solutions that deliver measurable business outcomes and support KPI and OKR definition and tracking.
  • Develop dashboards, measurement frameworks, and reporting mechanisms to quantify business value and adoption.
  • Support training, user enablement, go-live activities, and change adoption initiatives.
  • Gather user feedback and continuously improve AI products through iterative enhancement.
  • Partner with Product Owners, Architects, Business Analysts, Data Engineers, Risk teams, and operational stakeholders to solve complex business challenges.
  • Provide technical leadership and mentoring to engineers adopting AI capabilities.
  • Contribute to AI communities of practice, engineering standards, and capability development initiatives.
  • Promote innovation, experimentation, and continuous improvement across engineering teams.
  • Share knowledge, best practices, and lessons learned to foster organisational AI capability growth.
Desired Qualifications
  • Experience implementing enterprise-scale AI solutions in production environments.
  • Experience with AI observability tooling and model monitoring platforms.
  • Knowledge of service design and customer-centred product development.
  • Experience with Power Platform and AI-enabled automation solutions.
  • Familiarity with Microsoft Purview, Unity Catalog, or equivalent governance platforms.
  • Knowledge of AI ethics, regulatory requirements, and responsible AI practices.

M&G is a savings and investments company that manages money for individuals and institutions. It offers a range of investment products, including mutual funds, where many investors pool their money to buy a fixed mix of assets chosen by the fund manager. The funds are then managed to try to grow wealth and provide long-term returns, with investors’ money divided into shares or units based on the fund’s rules. M&G differentiates itself through its long history as an asset manager, its status as an independently listed company after the demerger from Prudential, and its focus on serving the UK and European markets with a broad lineup of funds and investment strategies. Its goal is to help people save and invest for the long term by providing access to professionally managed portfolios and investment options that suit different risk tolerances and goals.

Company Size

1,001-5,000

Company Stage

IPO

Headquarters

London, United Kingdom

Founded

1931

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Simplify Jobs

Simplify's Take

What believers are saying

  • Q1 2026 delivered £0.6 billion open-business inflows, reversing prior-year outflows.
  • 2025 external net inflows hit £7.0 billion, lifting operating profit to £838 million.
  • CVC's $1.1 billion secondary partnership validates M&G's private equity sourcing platform.

What critics are saying

  • Catherine Ross's 2026 exit leaves private credit leadership concentrated under James King.
  • Legacy life outflows still drove £1.6 billion net outflows in 2025, pressuring growth.
  • AUM fell to £371.4 billion in Q1 2026 after £3.0 billion market losses.

What makes M&G unique

  • Dai-ichi Life's 15% stake brings at least $6 billion flows by 2031.
  • M&G's £81 billion private markets platform scales infrastructure debt, private placements, and real estate.
  • PruFund and with-profits legacy books create sticky life capital for fee-earning assets.

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Benefits

Health Insurance

Life Insurance

Parental Leave

Flexible Work Hours

Paid Vacation

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