Senior/Principal Product Manager - MLOps

Radiant

Greater London

Sur place

GBP 90 000 - 150 000

Plein temps

Il y a 4 jours
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Avantages offerts par ce poste

25 days annual leave
Private medical insurance (Bupa)
Cycle to Work Scheme
Gympass
Employee stock program
Enhanced parental pay & leave

Résumé du poste

Radiant is redefining AI infrastructure with a senior/principal Product Manager - MLOps who owns strategy, roadmap, and delivery of the ML platform and cloud services. You will collaborate across GPU compute, training, inference, orchestration, model lifecycle, tooling, observability, and platform integrations with engineering, SRE, security, commercial teams, and customers.

This role focuses on making it easier for customers to build, train, deploy, and operate ML workloads on Radiant’s

Qualifications

  • Experience owning technical products, cloud platforms, MLOps products, developer platforms, or AI infrastructure.
  • Strong understanding of ML engineering and model lifecycle workflows.

Responsabilités

  • Own the strategy, roadmap, and delivery of Radiant’s MLOps and ML platform services.
  • Define products across the ML lifecycle, including training, fine-tuning, model management, deployment, inference, and monitoring.
  • Translate customer needs into clear product requirements, APIs, workflows, and priorities.
  • Partner with engineering on GPU orchestration, Kubernetes, scheduling, storage, networking, and platform services.
  • Work with ML engineers, researchers, and platform teams to improve developer experience, automation, and self-service.
  • Drive prioritisation, delivery, launch, adoption, and continuous iteration.
  • Define success metrics across performance, utilisation, reliability, adoption, and developer productivity.
  • Evaluate build vs. buy vs. partner decisions across the MLOps and AI infrastructure ecosystem.

Connaissances

ML platform thinking
Product thinking
Technical fluency
Customer empathy
Ownership
Communication
Ambiguity handling

Outils

PyTorch
Ray
Slurm
MLflow
Langchain
Hugging Face
vLLM
Triton

Description du poste

About our team:

Radiant is redefining how AI infrastructure is built.

We design and operate AI-native infrastructure platforms engineered for sovereignty, performance, and scale — powering GPU-native workloads, multi-tenant control planes, and high-performance AI systems for the most demanding environments. We are building purpose-built AI infrastructure from powered land, to compute, to software.

As we scale our operations and deploy capital into the next generation of AI infrastructure, we are looking to expand our product team with leaders who can combine technical strength with execution excellence and are driven to build.

Radiant was established by Brookfield, a leading global alternative asset manager with over US$1 trillion of assets under management across real estate, infrastructure, renewable power and transition, private equity and credit. Brookfield's global relationships, investment expertise and access to long-term institutional capital provide Radiant with a differentiated platform from which to develop, finance and operate AI infrastructure assets. This combination of entrepreneurial execution and institutional sponsorship enables Radiant to pursue large-scale GPU and AI infrastructure opportunities globally.

Job Summary:

As a Senior/Principal Product Manager - MLOps, you will own the strategy, roadmap, and delivery of Radiant’s machine learning platform and suite of AI/ML cloud services.

You’ll work across GPU compute, training, inference, orchestration, model lifecycle, developer tooling, observability, and platform integrations, partnering closely with engineering, infrastructure, SRE, security, commercial teams, and customers.

This is a highly technical product role focused on making it easier for customers to build, train, deploy, and operate ML workloads on Radiant’s neocloud platform.

Key Responsibilities:

  • Own the strategy, roadmap, and delivery of Radiant’s MLOps and ML platform services.

  • Define products across the ML lifecycle, including training, fine-tuning, model management, deployment, inference, and monitoring.

  • Translate customer needs into clear product requirements, APIs, workflows, and priorities.

  • Partner with engineering on GPU orchestration, Kubernetes, scheduling, storage, networking, and platform services.

  • Work with ML engineers, researchers, and platform teams to improve developer experience, automation, and self-service.

  • Drive prioritisation, delivery, launch, adoption, and continuous iteration.

  • Define success metrics across performance, utilisation, reliability, adoption, and developer productivity.

  • Evaluate build vs. buy vs. partner decisions across the MLOps and AI infrastructure ecosystem.

Qualifications:

  • Experience owning technical products, cloud platforms, MLOps products, developer platforms, or AI infrastructure.

  • Strong understanding of ML engineering and model lifecycle workflows.

  • Strong technical fluency across:

    • ML infrastructure: GPU compute, distributed training, inference, model serving

    • Orchestration: Kubernetes, containers, schedulers, distributed workloads

    • ML platforms: experiment tracking, model registries, pipelines, lifecycle management

    • Developer experience: APIs, SDKs, CLIs, notebooks

    • Infrastructure: storage, networking, IAM, observability, infrastructure-as-code

  • Familiarity with tools such as PyTorch, Ray, Slurm, MLflow, Langchain, Hugging Face, vLLM, Triton, or similar.

  • Able to balance performance, cost, usability, flexibility, and reliability.

  • Strong prioritisation, communication, and stakeholder management skills.

  • Comfortable taking ambiguous problems from discovery through delivery.

What you bring:

  • ML platform thinking: Understand how compute, orchestration, training, deployment, and inference fit together.

  • Product thinking: Turn complex AI infrastructure into simple, usable products.

  • Technical fluency: Work credibly across GPUs, ML frameworks, distributed systems, storage, networking, and APIs.

  • Customer empathy: Understand the needs of ML engineers, researchers, and platform teams.

  • Ownership: Drive products from discovery through launch, adoption, and iteration.

Our values:

  • Set the standard: Every single day, you spot opportunities to constructively shake things up

  • Inspire the change: There’s no blueprint for the future. You’ll embrace challenges and change

  • You’re real and you’re true to yourself: We cherish and celebrate diversity so you’ll feel right at home whoever you are and whoever you’re talking to, you treat everyone the same.

Why should you join us?

What sets us apart is our blend of modern technology, competitive benefits, and an open, welcoming work culture that enables our people to thrive.

Here are just some of the great things you can expect from us:

  • 25 days of annual leave

  • A culture that emphasises results over hierarchy, process & ego: we place great emphasis on the quality, ingenuity and creativity of work.

  • Open communication, regular feedback: we value smooth collaboration, direct and actionable feedback, and believe that leading with empathy and a growth mindset makes us better together.

  • Learning Time: we all have dedicated learning time to focus on new skills, projects or interests that lay outside of your day-to-day job.

  • Health & Wellbeing: we want everyone to feel healthy and happy, so we offer private medical insurance via Bupa.

  • Cycle to Work Scheme: we're committed to building a sustainable business, so we encourage cycling to work.

  • Gympass subscription to a variety of gyms and wellbeing apps

  • Participation in the company shares program

  • Enhanced parental pay & leave

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