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Software Engineer III - Python

Job in Glasgow, Glasgow City Area, G1, Scotland, UK
Listing for: JP Morgan Chase
Full Time position
Listed on 2026-09-03
Job specializations:
  • Software Development
    Backend Developer, DevOps, Cloud Engineer - Software, Python
Job Description & How to Apply Below
Role Overview As a Software Engineer III at JPMorgan

Chase within the AI/ML Technology, you will be a hands-on engineer responsible for building and shipping production software with a strong focus on AI-enabled capabilities. You will work across the full software development lifecycle—from requirements clarification and design through implementation, testing, deployment, and production support. You will develop backend services in Python, build APIs and microservices, implement LLM-based solutions including agentic workflows, and deliver into a multi-cloud environment using Terraform, Kubernetes, and CI/CD pipelines.

This role offers you the opportunity to grow your expertise in applied AI engineering while contributing to systems that operate at enterprise scale.

Key responsibilities

Deliver software through a disciplined software development lifecycle, working from well-defined requirements through design, implementation, testing, release, and production support

Write maintainable Python code with unit and integration tests, debugging issues across application, API, data-access, and runtime layers

Implement LLM-driven workflows including prompting, tool and function calling, routing, orchestration, and state handling to support multi-step agentic task execution

Build and maintain inference-time integrations such as model gateways, APIs, caching, fallbacks, timeouts, and concurrency controls for production AI systems

Implement retrieval-augmented generation components where applicable, including chunking, embeddings, retrieval, and grounding strategies

Build REST and gRPC endpoints following agreed contracts, implementing authentication and authorization integration, input validation, error handling, and secure data handling practices

Implement SQL-backed business logic powering APIs and microservices, including joins, aggregations, filtering, pagination, and transactional workflows

Contribute to CI/CD pipelines and Git workflows, packaging and deploying services using containers and Kubernetes with support for safe rollouts and rollbacks

Contribute to infrastructure-as-code using Terraform within established team patterns across modules, environments, and state management

Improve operability of services by adding and using observability tooling including logs, metrics, traces, dashboards, and alerts, and participate in incident response and root-cause analysis

Leverage enterprise-authorized AI coding assist tools within the work environment to improve code quality, delivery speed, and productivity (e.g., code generation/refactoring, unit test creation, documentation), while validating outputs through peer review, automated testing, and secure coding standards

Apply knowledge of tools within the Software Development Life Cycle toolchain, including enterprise-authorized AI-assisted development and automation capabilities, to improve the value realized by automation

Required skills & experience

Formal training or certification on software engineering concepts and proficient applied experience

Strong hands-on Python development experience building backend services, including testing, packaging, dependency management, and maintainability

Strong database and SQL proficiency, with experience implementing application logic and APIs on top of relational data Experience building APIs and microservices using REST or gRPC, including contracts, security basics, and observability

Practical experience delivering LLM-based features as part of software systems, with familiarity with agentic patterns

Working knowledge of delivery and operations including CI/CD, Git, containers, and Kubernetes Familiarity with Terraform and cloud infrastructure concepts in a multi-cloud environment

Solid understanding of software engineering fundamentals and software development lifecycle practices including design, reviews, testing, release, and production support

Hands-on experience using enterprise-authorized AI-assisted software development tools within the work environment (e.g., for coding, testing, troubleshooting, or documentation) with demonstrated ability to critically evaluate and validate AI-generated outputs

Understanding of responsible AI use in engineering workflows, including data sensitivity considerations, secure handling of inputs/outputs, and adherence to resiliency and security expectations

Preferred skills

Strong debugging and troubleshooting skills in distributed systems, including root-cause analysis and performance bottleneck identification using logs, metrics, and traces

Experience improving code quality and reliability through test strategy improvements, refactoring, static analysis, and dependency hygiene

Experience with deployment and operational best practices including safe releases, rollbacks, environment configuration, and incident readiness

Familiarity with common architecture patterns such as event-driven designs, async processing, caching, API versioning, and backward compatibility

Experience collaborating effectively in agile…
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