Senior Lead Software Engineer- Agentic Gen AI / NLP in Glasgow

Senior Lead Software Engineer- Agentic Gen AI / NLP in Glasgow

Glasgow Full-Time 80000 - 98000 £ / year (est.) No working from home possible
JPMorganChase

At a Glance

  • Tasks: Lead a team to develop innovative AI solutions and mentor engineers in cutting-edge technology.
  • Company: Join JPMorgan Chase, a leader in Risk Technology with a focus on generative AI.
  • Benefits: Competitive salary, career growth, and opportunities to work with advanced technologies.
  • Other info: Dynamic environment with a culture of excellence and continuous learning.
  • Why this job: Shape the future of Asset and Wealth Management while making a real impact.
  • Qualifications: Degree in Computer Science or related field; experience in data science and NLQ.

The predicted salary is between 80000 - 98000 £ per year.

Description

Are you passionate about building the next generation of AI solutions?

Join us to lead and mentor a team of talented engineers, drive innovation in generative and agentic AI, and deliver impactful, scalable technology for Risk Technology.

You’ll collaborate with cross-functional partners and play a key role in shaping the future of Asset and Wealth Management Risk.

As a

Lead Agentic Gen AI / Natural Language Querying Engineer – Vice President at JPMorgan Chase in Risk Technology, you will lead a specialized technical area, driving impact across teams, technologies, and projects.

You will leverage your expertise in software engineering, multi-agent system design, data science, and NLQ to deliver complex, high-impact initiatives.

You will mentor and guide a team of engineers, foster best practices in AI engineering, and partner with data science, product, and business teams to deliver end-to-end solutions that drive value for the Risk business.

Job responsibilities

  • Lead the deployment and scaling of advanced generative AI and agentic AI solutions for the Risk business, with a focus on natural language querying of structured and unstructured data sources.
  • Design and execute enterprise-wide, reusable AI frameworks and core infrastructure to accelerate AI solution development, including NLQ capabilities for diverse data types.
  • Develop multi-agent systems for orchestration, agent-to-agent communication, memory, telemetry, guardrails, and NLQ-driven data retrieval and processing.
  • Guide research on context and prompt engineering techniques to improve prompt-based model performance and NLQ accuracy, utilizing libraries such as Lang Graph.
  • Develop and maintain tools and frameworks for prompt-based agent evaluation, monitoring, and optimization at enterprise scale, with emphasis on NLQ workflows and orchestration.
  • Build and maintain data pipelines and processing workflows for scalable, efficient consumption and querying of structured and unstructured data via natural language interfaces.
  • Write secure, high-quality production code and conduct code reviews.
  • Partner with Data Science, Product, and Business teams to identify requirements and develop NLQ-enabled solutions.
  • Communicate technical concepts and results to both technical and non-technical stakeholders, including senior leadership.
  • Provide technical leadership, mentorship, and guidance to junior engineers, promoting a culture of excellence and continuous learning.

Required qualifications, capabilities, and skills

  • Bachelor’s or Master’s degree in Computer Science, Engineering, Data Science, or a related field.
  • Experience in data science and natural language querying, including experience deploying end-to-end pipelines on AWS.
  • Strong proficiency in Python.
  • Hands-on experience in system design, application development, testing, and operational stability.
  • Experience using Lang Graph for multi-agent orchestration and NLQ integration.
  • Experience with AWS and infrastructure-as-code tools such as Terraform.

Preferred qualifications, capabilities, and skills

  • Strategic thinker with the ability to drive technical vision for business impact.
  • Experience with agentic telemetry, evaluation services, and orchestration of NLQ workflows.
  • Demonstrated leadership working with engineers, data scientists, and AI practitioners.
  • Familiarity with MLOps practices and AI pipelines.
  • Hands-on experience building and maintaining user interfaces for NLQ and data exploration.

Senior Lead Software Engineer- Agentic Gen AI / NLP in Glasgow employer: JPMorganChase

JPMorganChase is an exceptional employer, offering a dynamic work environment in Greater London where innovation thrives. With a strong commitment to diversity and inclusion, employees benefit from collaborative agile teams, extensive professional development opportunities, and the chance to work on cutting-edge technology products that shape the future of finance. Join us to be part of a culture that values your contributions and supports your growth.

JPMorganChase

Contact Details:

JPMorganChase Recruitment Team

StudySmarter Expert Advice🤫

We think this is how you could land Senior Lead Software Engineer- Agentic Gen AI / NLP in Glasgow

Join Local Tech Meetups

Get out there and mingle with fellow developers by joining local tech meetups. It’s a fantastic way to meet people who might be working at JPMorganChase or know someone who does. Plus, you can pick up some trendy tech skills and trends while you're at it!

Contribute to Open Source Projects

Show off your coding chops by jumping into open-source projects. Not only does this give you practical experience, but it also gets you noticed in the dev community. You'll create a killer portfolio that speaks volumes about your skills to JPMorganChase.

Tap into Online Developer Communities

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Explore Job Boards Specifically for Tech Roles

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We think you need these skills to ace Senior Lead Software Engineer- Agentic Gen AI / NLP in Glasgow

Generative AI
Agentic AI
Natural Language Querying (NLQ)
Multi-Agent System Design
Data Science
Python
AWS

Some tips for your application 🫡

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 JPMorganChase.

Craft a killer cover letter:Your cover letter is your chance to stand out—make it personal! Explain why you want to work at JPMorganChase and how your skills align with the role. Show us your passion for software development. We dig enthusiastic candidates who understand the value of collaboration and continuous learning!

Be clear and concise:When it comes to writing your CV and cover letter, clarity is key. Avoid jargon that could confuse us and stick to simple, direct language. Highlight your achievements with quantifiable results where possible, and keep everything easy to read. A well-organised application goes a long way!

How to prepare for a job interview at JPMorganChase

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 JPMorganChase uses React or Node.js, for instance, be ready to discuss how we’ve used them in previous projects or coursework.

Showcase Your Projects

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.

Prepare for Behavioural Questions

While technical skills are key, full-time positions also require cultural fit. Be ready to discuss our previous experiences and how we handle teamwork, conflict, and deadlines. Brush up on the STAR method—Situation, Task, Action, Result—to clearly articulate our past experiences when discussing how we've contributed to a team.