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Senior Software Engineer - ML Infrastructure United Kingdom Jobs (Remote work)

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Senior Software Engineer - Cloud Infrastructure
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Join ClickHouse Cloud as a Senior Software Engineer in London. Design and build robust, scalable cloud infrastructure using Go and Kubernetes on AWS/Azure/GCP. Enjoy a flexible remote role with equity, healthcare, and a home office stipend in a globally distributed team.
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United Kingdom , London
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Not provided
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ClickHouse
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Until further notice
Senior Software Engineer (Infrastructure) - HyperDX
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Join ClickHouse to revolutionize developer observability with HyperDX. As a Senior Infrastructure Engineer, you'll build scalable, cloud-native backend systems using TypeScript, Kubernetes, and ClickHouse. This remote UK role offers equity, healthcare, and a flexible work environment for experts ...
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United Kingdom
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ClickHouse
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Until further notice
Explore high-impact Senior Software Engineer - ML Infrastructure jobs and discover a career at the intersection of cutting-edge machine learning and robust systems engineering. Professionals in this critical role are the architects behind the scalable, reliable, and efficient platforms that power the development, training, and deployment of machine learning models at scale. They build the foundational tools and services that enable data scientists and ML researchers to innovate faster, transforming theoretical models into production-grade AI applications. This position is central to the success of modern AI-driven products, requiring a unique blend of software craftsmanship, distributed systems expertise, and a deep understanding of the ML lifecycle. A Senior Software Engineer in ML Infrastructure typically shoulders a wide array of responsibilities. Core duties involve designing and developing large-scale distributed systems for model training pipelines, feature stores, and low-latency serving platforms. They create the underlying compute, storage, and networking abstractions that handle massive datasets and intensive GPU workloads. A significant part of the role is ensuring system reliability, observability, and cost-efficiency by implementing robust monitoring, automated scaling, and resource management solutions. These engineers also build internal platforms and tooling to streamline the ML workflow, from experiment tracking and versioning to continuous integration and deployment (CI/CD) for models. Furthermore, they establish best practices, provide technical leadership, and mentor other engineers, all while collaborating closely with ML, data, and product teams to align infrastructure capabilities with strategic business goals. To excel in Senior Software Engineer - ML Infrastructure jobs, candidates generally possess a strong foundation in software engineering coupled with specialized knowledge. Typical requirements include extensive experience in backend development using languages like Python, Go, Java, or Rust. Proficiency with cloud platforms (AWS, GCP, Azure), container orchestration (Kubernetes), and infrastructure-as-code (Terraform) is essential. A deep understanding of distributed systems principles—data processing, networking, and storage—is critical. While not always requiring a deep research background, familiarity with ML frameworks (TensorFlow, PyTorch), workflow orchestrators (Kubeflow, Airflow), and the unique challenges of GPU computing is a major advantage. Success in these roles also demands strong operational rigor for building observable and resilient systems, excellent cross-functional communication skills, and the ability to translate complex infrastructure challenges into simple, developer-friendly platforms. For those passionate about building the backbone of AI innovation, Senior Software Engineer - ML Infrastructure jobs offer a challenging and rewarding career path.

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