AI Infrastructure Engineer, Serving Platform

The Borough
London, UK
13 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Experienced
Experience required
4 years minimum
Working hours
Regular working hours

Tech stack

Amazon Web Services C++ (Programming Language) Cloud Computing Computer Programming Fault Tolerance Python (Programming Language) Data Streaming Workflow Management Systems AI Infrastructure Load Balancing Large Language Models Backend
+7 more
Rate Limiting Build Management Kubernetes Machine Learning Operations TensorRT Terraform Docker

Job description

As a Software Engineer on the ML Infrastructure team, you will design and build platforms for scalable, reliable, and efficient serving of LLMs. Our platform powers cutting-edge research and production systems, supporting both internal and external use cases across various environments.The ideal candidate combines strong ML fundamentals with deep expertise in backend system design. You’ll work in a highly collaborative environment, bridging research and engineering to deliver seamless experiences to our customers and accelerate innovation across the company.You will:Build and maintain fault-tolerant, high-performance systems for serving LLMs and other models at scale.Build an internal platform to empower LLM capability discovery.Collaborate with researchers and engineers to integrate and optimize models for production and research use cases.Conduct architecture and design reviews to uphold best practices in system design and scalability.Develop monitoring and observability solutions to

Requirements

ensure system health and performance.Lead projects end-to-end, from requirements gathering to implementation, in a cross-functional environment.Ideally you’d have:4+ years of experience building large-scale, high-performance backend systems.Strong programming skills in one or more languages (e.g., Python, Go, Rust, C++).Experience with LLM serving and routing fundamentals (e.g. rate limiting, token streaming, load balancing, budgets, etc.)Experience with LLM capabilities and concepts such as reasoning, tool calling, prompt templates, etc.Experience with containers and orchestration tools (e.g., Docker, Kubernetes).Familiarity with cloud infrastructure (AWS, GCP) and infrastructure as code (e.g., Terraform).Proven ability to solve complex problems and work independently in fast-moving environments.Nice to haves:Experience with modern LLM serving frameworks such as vLLM, SGLang, TensorRT-LLM, or text-generation-inference.PLEASE NOTE: Our policy requires a 90-day waiting period before

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Good distractions

Talks and stories from around this role — technically off-topic, practically not.

2:08 min

Applying large language models to infrastructure tasks

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Essential phases in building and refining language models

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Structuring and scaling the backend engineering team

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Inspecting default bridge architectures and custom Docker networks

Oliver Seitz Oliver Seitz · World Congress 2025

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Building the supportive infrastructure around AI components

Radu Vunvulea Radu Vunvulea · World Congress 2025

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Core libraries driving inference engines and multi-GPU networking

Adolf Hohl Adolf Hohl · World Congress 2024

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