Software Engineer

Experis
London, UK
3 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Compensation
£195,000.0 - £215,800.0
Working hours
Regular working hours
Languages
English
Job source

Tech stack

Adobe InDesign Artificial Intelligence Automation of Tests Microsoft Azure Cloud Computing Cloud Engineering Cloud Storage Continuous Integration Python (Programming Language) Machine Learning Performance Tuning Tensorflow
+12 more
Software Engineering Software Systems Google Cloud Pytorch Multi-Agent Systems Deep Learning Electronic Medical Records Amazon Virtual Private Cloud (VPC) Fastapi Kubernetes Data Analytics Terraform

Job description

To strengthen our AI for Science (AI4S) team, we are looking for Software Engineers with a track record in developing production-grade, data-driven software solutions. You will design, build and operate the scalable cloud infrastructure and services - including the serving of our models - that our AI systems and agentic applications run on, and you will be accountable for keeping them reliable in production. This is hands-on software and platform engineering: building robust, well-tested, high-performance systems that scientists across the client nd on every day, on modern cloud technology and the vast biomedical data sources available to us.

In this role you will

  • Design, build and operate scalable infrastructure and services that support our AI models and agentic systems across the entire software development life cycle.
  • Own the reliability of what you build - set up CI/CD and release processes, automated testing, monitoring and alerting, and lead the response when things break, so the systems scientists rely on stay dependable.
  • Build and operate the model-serving infrastructure that exposes our models in production with efficient use of compute.
  • Develop and maintain cloud-native architectures that enable reliable deployment and scaling of AI/ML workloads.
  • Deliver robust, tested and high-performance code in an agile environment, and work closely with ML engineers and domain experts to make the infrastructure fit for purpose.

Requirements

  • Demonstrated advanced programming expertise in Python and in developing and delivering robust, scalable software solutions using frameworks like FastAPI.
  • Experience with cloud platforms (GCP, Azure) and cloud-native architectures.
  • Passion for software design and commitment to the development of reusable, scalable, and testable software components.
  • Basic understanding of at least one major deep learning framework (PyTorch, JAX, TensorFlow).
  • Hands-on experience with Google Cloud Platform, in particular the services we build on: Cloud Run, Google Kubernetes Engine, Cloud Storage, Artifact Registry, Cloud SQL.
  • Fluency in English.

Preferred Qualifications & Skills If you have the following characteristics, it would be a plus:

  • Familiarity with machine learning principles and state-of-the-art modelling approaches.
  • Experience in design, development and deployment of commercial cloud-native software and infrastructure.
  • Experience building and deploying large-scale AI models and agentic systems in production environments.
  • Experience architecting, developing, and deploying distributed training pipelines for large models with PyTorch or TensorFlow.
  • Expertise in performance optimization, cost optimization, and efficient compute resource management in cloud environments.
  • Experience running production services at scale, including defining and working to service-level objectives (SLOs/SLIs).
  • Experience with incident response and post-incident review, and with building the observability that supports it.
  • Infrastructure-as-code (e.g. Terraform) for provisioning and maintaining cloud environments.
  • Experience developing and administering workloads on Kubernetes (e.g. GKE).
  • Familiarity with GCP networking and security controls - VPC, VPC Service Controls (VPC-SC), and private connectivity.
  • Contributions to relevant open-source projects.
  • Knowledge or interest in disease biology, molecular biology and medicine.
  • Experience working with biomedical data (e.g., genomics, transcriptomics, proteomics, electronic health records, clinical images).

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