Live opening · Posted 6 hours ago

Applied AI ML Lead- Agentic AI & Python

JPMorgan Chase · GLASGOW, LANARKSHIRE, United Kingdom
Oracle
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At a glance

The key details from the original listing.

Posted 6 hours ago
CompanyJPMorgan Chase
LocationGLASGOW, LANARKSHIRE, United Kingdom
SourceOracle
Listed6 hours ago

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About the role

Description supplied by the original job listing.

We're looking for a hands-on AI engineer ready to take their career to new heights. Join the ranks of top talent at one of the world's most influential companies.
As an Applied AI ML Lead - Vice President at JPMorgan Chase within the International Private Bank (IPB) Technology Artificial Intelligence and Machine Learning (AIML) Team, you provide deep engineering expertise and work across agile teams to enhance, build, and deliver trusted market-leading AI products in a secure, stable, and scalable way. You will translate business problems into agentic AI and machine learning solutions, taking models from concept through to production-grade services with measurable client and advisor impact.
You will be responsible to the Head of AIML in IPB Tech for the end-to-end design, build, and production delivery of priority IPB AI/ML use cases, with particular focus on agentic AI applications, generative AI guardrails, and production ML supporting advisor and client journeys.
Job responsibilities
Owns end-to-end delivery of priority IPB AI/ML use cases, from problem framing and business case through to deployed, monitored production services with measurable advisor and client impact
Leads the engineering build of agentic AI and LLM-powered products serving IPB advisors and clients across the globe.
Sets the engineering quality bar for the team's AI products through code reviews, technical design, and pairing with peers and junior engineers
Establishes and operates Responsible AI controls in production (guardrails, evaluation frameworks, observability, and model risk controls) to firm-wide standards
Acts as a primary technical partner to IPB business stakeholders, surfacing new AI/ML opportunities and shaping them into funded workstreams
Represents the AIML team in firm-wide AI/ML governance and engineering forums; ensures cross-border, regulatory, and data-privacy considerations are reflected in solution design
Contributes to the team's GenAI education programme through training content, knowledge-sharing sessions, and mentoring of junior engineers and interns
Champions the firm's culture of diversity, Opportunity, inclusion, and respect
Required qualifications, capabilities, and skills
Formal training or certification in software engineering concepts and expert applied experience
Advanced proficiency in Python and modern software engineering practices (testing, design patterns, code review, version control)
Fluent with AI coding tools (e.g., Claude Code, GitHub Copilot) as a core part of day-to-day software development, with the judgement to know when to lean on them and when not to
Hands-on experience building, evaluating, and deploying machine learning models into production
Practical experience with Large Language Models, including prompt engineering, RAG, fine-tuning, agentic frameworks, skills.
Demonstrated experience delivering system design, application development, testing, and operational stability for ML or data-intensive systems
Strong communication skills with confidence engaging senior business stakeholders and translating technical concepts for non-technical audiences
Experience applying new methods to determine solutions for complex technology problems across multiple technical disciplines
MSc in Computer Science, Data Science, Engineering, or a related quantitative field
Preferred qualifications, capabilities, and skills
Postgraduate-level qualification in data science, artificial intelligence, or machine learning
Practical experience with CI/CD, containerization, and cloud-native deployment patterns
Experience within financial services technology, particularly wealth, private banking, or asset management
Experience with Databricks, Kubernetes, or comparable ML / cloud platforms
Experience designing or contributing to AI governance, model validation, or guardrail frameworks

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