Lead Software Engineer - MLOps Platform in London
Lead Software Engineer - MLOps Platform

Lead Software Engineer - MLOps Platform in London

London Full-Time 36000 - 60000 £ / year (est.) No home office possible
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At a Glance

  • Tasks: Design and develop a scalable ML platform, ensuring reliability and collaboration with data scientists.
  • Company: Join JPMorgan Chase's innovative team focused on solving real-world problems.
  • Benefits: Competitive salary, diverse culture, mentorship opportunities, and a people-first environment.
  • Why this job: Make a real impact in fintech while working with cutting-edge technology and diverse teams.
  • Qualifications: Proficiency in Java/Python and experience with MLOps tools and cloud technologies.
  • Other info: Dynamic role with opportunities for growth and collaboration in a supportive environment.

The predicted salary is between 36000 - 60000 £ per year.

Out of the successful launch of Chase in 2021, we’re a new team, with a new mission. We’re creating products that solve real world problems and put customers at the center - all in an environment that nurtures skills and helps you realize your potential. Our team is key to our success. We’re people-first. We value collaboration, curiosity and commitment.

As a Lead MLOps Platform Engineer at JPMorgan Chase within the Accelerator, you are the heart of this venture, focused on getting smart ideas into the hands of our customers. You have a curious mindset, thrive in collaborative squads, and are passionate about new technology. By your nature, you are also solution-oriented, commercially savvy and have a head for fintech. You thrive in working in tribes and squads that focus on specific products and projects – and depending on your strengths and interests, you'll have the opportunity to move between them.

While we’re looking for professional skills, culture is just as important to us. We understand that everyone's unique – and that diversity of thought, experience and background is what makes a good team, great. By bringing people with different points of view together, we can represent everyone and truly reflect the communities we serve. This way, there’s scope for you to make a huge difference – on us as a company, and on our clients and business partners around the world.

Job responsibilities:

  • Design and develop a scalable ML platform to support model training, deployment, and monitoring.
  • Build and maintain infrastructure for automated ML pipelines, ensuring reliability and reproducibility supporting different model frameworks and architectures.
  • Implement tools and frameworks for model versioning, experiment tracking, and lifecycle management.
  • Develop systems for monitoring model performance, addressing data drift and model drift.
  • Collaborate with data scientists and engineers to devise model integration/deployment patterns and best practices.
  • Optimize resource utilization for training and inference workloads.
  • Designing and implementing a framework for effective tests strategies (unit, component, integration, end-to-end, performance, champion/challenger, etc).
  • Ensure platform compliance with data privacy, security, and regulatory standards.
  • Mentor team members on platform design principles and best practices.
  • Mentor other team members on coding practices, design principles, and implementation patterns that lead to high-quality maintainable solutions.

Required qualifications, capabilities and skills:

  • Proficiency in coding in recent versions of Java and/or Python programming languages.
  • Experience with MLOps tools and platforms (e.g., MLflow, Amazon SageMaker, Google VertexAI, Databricks, BentoML, KServe, Kubeflow).
  • Experience with cloud technologies (AWS/Azure/GCP) and distributed systems, web technologies and event-driven architectures.
  • Understanding of data versioning and ML models lifecycle management.
  • Hands-on experience with CI/CD tools (e.g., Jenkins, GitHub Actions, GitLab CI).
  • Knowledge of infrastructure-as-code tools (e.g., Terraform, Ansible).
  • Strong knowledge of containerization and orchestration tools (e.g., Docker, Kubernetes).
  • Proficiency in operating, supporting, and securing mission critical software applications.

Preferred qualifications, capabilities and skills:

  • Exposure to cloud-native microservices architecture.
  • Familiarity with advanced AI/ML concepts and protocols, such as Retrieval-Augmented Generation (RAG), agentic system architectures, and Model Context Protocol (MCP).
  • Familiarity with model serving frameworks (e.g., TensorFlow Serving, FastAPI).
  • Exposure to feature stores (Feast, Databricks, Hopswork, SageMaker, VertexAI).
  • Previous experience deploying & managing ML models is beneficial.
  • Experience working in a highly regulated environment or industry.

Lead Software Engineer - MLOps Platform in London employer: Jpmorgan Chase & Co.

At JPMorgan Chase, we pride ourselves on being a people-first employer that fosters a collaborative and innovative work culture. As a Lead Software Engineer in our MLOps Platform team, you will have the opportunity to work with cutting-edge technology while contributing to meaningful projects that impact our customers. We offer a diverse environment that values unique perspectives, along with ample opportunities for professional growth and mentorship, making it an excellent place for those looking to advance their careers in fintech.
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Contact Detail:

Jpmorgan Chase & Co. Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Lead Software Engineer - MLOps Platform in London

✨Tip Number 1

Network like a pro! Reach out to folks in your industry on LinkedIn or at meetups. A friendly chat can lead to opportunities that aren’t even advertised yet.

✨Tip Number 2

Show off your skills! Create a portfolio showcasing your projects, especially those related to MLOps and ML platforms. This gives potential employers a taste of what you can do.

✨Tip Number 3

Prepare for interviews by practising common questions and scenarios specific to the role. Think about how your experience aligns with their mission and values – they love a good culture fit!

✨Tip Number 4

Don’t forget to apply through our website! It’s the best way to ensure your application gets seen by the right people. Plus, we love seeing candidates who are proactive!

We think you need these skills to ace Lead Software Engineer - MLOps Platform in London

Java
Python
MLOps tools
MLflow
Amazon SageMaker
Google VertexAI
Databricks
BentoML
KServe
Kubeflow
AWS
Azure
GCP
CI/CD tools
Jenkins
GitHub Actions
GitLab CI
infrastructure-as-code tools
Terraform
Ansible
containerization
Docker
Kubernetes
data versioning
ML models lifecycle management
cloud-native microservices architecture
advanced AI/ML concepts
Retrieval-Augmented Generation (RAG)
agentic system architectures
Model Context Protocol (MCP)
model serving frameworks
TensorFlow Serving
FastAPI
feature stores
Feast
Hopswork
highly regulated environment experience

Some tips for your application 🫡

Show Your Passion for Tech: When you're writing your application, let your enthusiasm for technology shine through! We love candidates who are curious and eager to learn, so share any projects or experiences that highlight your passion for MLOps and fintech.

Tailor Your Application: Make sure to customise your application to reflect the job description. Highlight your experience with MLOps tools, cloud technologies, and coding languages like Java and Python. This shows us you’re not just a good fit, but the perfect fit!

Be Yourself: We value diversity and unique perspectives, so don’t be afraid to let your personality come through in your application. Share your story, your journey, and what makes you tick – we want to know the real you!

Apply Through Our Website: For the best chance of success, make sure to apply through our website. It’s the easiest way for us to see your application and get you into the process. Plus, it shows you’re serious about joining our team!

How to prepare for a job interview at Jpmorgan Chase & Co.

✨Know Your Tech Inside Out

Make sure you’re well-versed in the latest versions of Java and Python, as well as MLOps tools like MLflow and Amazon SageMaker. Brush up on your cloud technologies and distributed systems knowledge, because they’ll likely come up during the interview.

✨Showcase Your Collaborative Spirit

Since this role values collaboration, be ready to discuss past experiences where you worked in teams or squads. Highlight how you contributed to group projects and how you can bring that team-oriented mindset to their environment.

✨Demonstrate Problem-Solving Skills

Prepare to share examples of how you’ve tackled real-world problems with innovative solutions. Think about specific challenges you faced in previous roles and how you approached them, especially in relation to ML model deployment and monitoring.

✨Emphasise Cultural Fit

This company values diversity and unique perspectives, so be yourself! Share your thoughts on how your background and experiences can contribute to a more inclusive team. Show that you’re not just a tech whiz but also someone who aligns with their people-first culture.

Lead Software Engineer - MLOps Platform in London
Jpmorgan Chase & Co.
Location: London

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