Senior Manager - Clara Data Science

KPMG
Watford
4 days ago
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The Role

As a Principal AI Engineer, you will play a pivotal role in transforming advanced AI concepts into impactful, production-ready solutions within the Audit Technology team. You will lead a dedicated AI engineering squad, working closely with data scientists, data engineers, software developers, cloud architects, and audit professionals to build and scale AI-driven systems that enhance audit quality, efficiency, and insight generation.

 

From developing robust proof-of-concepts to deploying enterprise-grade solutions, you will apply your expertise in AI engineering, cloud platforms, and technologies such as Generative AI, Azure, Databricks to embed intelligence into critical audit workflows and products.

 

In addition to technical leadership, you will shape the growth of the team—mentoring engineers, promoting best practices, and fostering a culture of collaboration, innovation, and continuous improvement. You will stay at the forefront of AI engineering trends, advocate for modern development methodologies, and drive knowledge-sharing across both the technology and audit domains.

 

Responsibilities

·Leadership & Mentorship:Lead a high-performing AI engineering team comprising software engineers and AI practitioners. Provide hands-on technical direction, foster career growth, and cultivate a collaborative culture that emphasizes engineering excellence, innovation, and continuous improvement.

·Scalable AI Engineering:Drive the design, development, and deployment of production-grade AI systems tailored to audit applications. Ensure solutions are scalable, reliable, and maintainable by applying strong software engineering principles, MLOps practices, and cloud-native development.

·End-to-End AI Solution Delivery:Oversee the full lifecycle of AI product engineering—from architectural design and prototyping to CI/CD-enabled deployment—using modern platforms and tools such as Azure ML, Databricks, MLflow, LangChain and LangGraph. Champion automation, testing, and observability across pipelines.

·Operational Excellence:Define reusable development patterns, enforce coding standards, and promote MLOps best practices that support version control, performance optimisation, and maintainability.

·Cross-Disciplinary Collaboration:Partner closely with data scientists, product managers, platform engineers, and QA teams to align on technical requirements, delivery timelines, and integration plans. Ensure AI capabilities are well-embedded within core audit platforms and services.

·AI Governance & Risk Management:Implement engineering controls to support responsible AI use, including model monitoring, explainability, security, and auditability. Contribute to the operationalisation of AI governance frameworks to ensure regulatory and ethical compliance.

·Capability Building & Knowledge Sharing:Drive initiatives to enhance internal capabilities, empowering team members and the broader Audit Technology function with the skills and knowledge to adopt and adapt AI innovations effectively.

 

Requirements

· Bachelor (preferably master or PhD) in Computer Science, Artificial Intelligence, Data Science, Statistics, Engineering, or a related technical field — or equivalent professional experience.

· Strong knowledge of generative AI, machine learning, deep learning, natural language processing and other relevant AI fields.

· Proven track record of designing, developing, and deploying AI systems in production environments.

· Proficient in Python and key ML libraries (e.g. PyTorch, PySpark, scikit-learn, Hugging Face Transformers).

· Hands-on experience with modern data platforms and AI tooling such as Azure ML, Databricks, MLflow, LangChain, LangGraph.

· Proven experience with modern engineering practices Git, version control, unit testing and containerisation.

· Familiarity with agile work methodologies and tools like Jira and Confluence.

· Exceptional leadership and communication skills, with the ability to convey complex technical concepts to diverse audiences.

· Advanced certifications in AI, machine learning, cloud computing or data engineering are highly advantageous.

· Professional accounting qualification preferred, however not a requirement.

 

Why Audit at KPMG?

Audit is the largest of our UK practices. Some of the world’s biggest companies rely on us to provide independent insight, challenge and expertise, so the work we undertake affects investment decisions, inspires confidence in public sector expenditure and supports our economic growth. Today, more than ever in disruptive times, audit is a function needed by society, and in the future, so we can capitalise, and grow. As part of the Audit team, you’ll be helping to build the confidence and trust that business and society need to thrive. We want to lead the conversation when it comes to shaping the future of the profession. And given the scale and variety of our audit engagements in both the UK and globally, we are well placed to create change. If you share our commitment to achieving excellence and working to the highest audit standards, are a natural collaborator who values different perspectives and relishes the opportunity to develop and progress - then KPMG could be the place where you can thrive.

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