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Cloud Engineer jobs in United Kingdom

Senior ML Platform Architect: SageMaker & MLOps

London Stock Exchange Group

Greater London
On-site
GBP 125,000 - 150,000
10 days ago
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Platform Mobile RF Engineer — Lead Full-Cycle Prototyping

Sepura plc.

Cambridge
On-site
GBP 80,000 - 100,000
10 days ago

Engineering Manager - Core Video & Data Platforms (Remote)

Applied Intuition Inc.

Greater London
Hybrid
GBP 80,000 - 100,000
10 days ago

Hands-On Engineering Manager — Cloud & API Delivery

SR2 Clean Energy

Cambridge
On-site
GBP 80,000 - 100,000
10 days ago

Global GTM Systems Specialist (HubSpot & Revenue Ops)

Methodfi

Greater London
Hybrid
GBP 50,000 - 70,000
10 days ago
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Senior Azure Platform Engineer - AKS, Terraform & CI/CD

Methodfi

Greater London
On-site
GBP 60,000 - 80,000
10 days ago

Senior Platform Engineer

Methodfi

Greater London
On-site
GBP 60,000 - 80,000
10 days ago

Site Reliability Engineer

Wedo Technology Solutions Ltd.

Greater London
On-site
GBP 100,000 - 125,000
11 days ago
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Senior Software Engineer (Platform)

Methodfi

Greater London
On-site
GBP 125,000 - 150,000
13 days ago

Senior Cloud Infrastructure Security Engineer London

Mesh-AI Limited

Greater London
On-site
GBP 80,000 - 100,000
21 days ago

Senior Cloud DevOps Engineer

Capital One

Nottingham
Hybrid
GBP 60,000 - 80,000
21 days ago

5 Jan 2026 BBBH62009 Senior Cloud Systems Engineer €95000 - €105000.00 per annum + Bonus, Pensi[...]

Northern Ireland Water Limited

Belfast
Hybrid
GBP 85,000 - 100,000
19 days ago

Cloud-Native Full-Stack Engineer for Creative Tech

Precis Group

United Kingdom
On-site
GBP 80,000 - 100,000
19 days ago

Hybrid Dublin: Senior Cloud Ops & Automation Engineer

Northern Ireland Water Limited

Belfast
Hybrid
GBP 85,000 - 100,000
19 days ago

Junior WFM Engineer - Genesys Cloud & Workforce Management

Kerv

United Kingdom
Hybrid
GBP 30,000 - 40,000
21 days ago

Cloud-Native DevOps Engineer: Kubernetes & CI/CD

Cegedim

Leyland
Hybrid
GBP 50,000 - 70,000
23 days ago

Senior QA Engineer: Java, Cucumber & Cloud Automation

London Stock Exchange Group

Nottingham
On-site
GBP 35,000 - 50,000
23 days ago

1st Line IT Service Desk Engineer: Microsoft 365 & Cloud

Air IT Limited

Greater London
Hybrid
GBP 25,000 - 35,000
17 days ago

Lead Data Engineer - Cloud Data Platform

London Stock Exchange Group

Greater London
On-site
GBP 60,000 - 80,000
18 days ago

Network & Systems Engineer – Hybrid Infra & Cloud

GFL Environmental Inc.

Portsmouth
On-site
GBP 80,000 - 100,000
19 days ago

Lead Software Engineer: Cloud-Native Architect & Mentor

Capital One

Nottingham
Hybrid
GBP 70,000 - 90,000
20 days ago

Software Engineer II — AI-Driven Cloud Solutions

Expedia, Inc.

Greater London
On-site
GBP 60,000 - 80,000
21 days ago

Software Engineer – Hybrid UK (Cloud, K8s, CI/CD)

Nexor Limited

Nottingham
Hybrid
GBP 50,000 - 70,000
22 days ago

Senior Data Engineer — Scalable Cloud Pipelines

Publicis Groupe UK

Greater London
On-site
GBP 65,000 - 85,000
22 days ago

Global IT Support Engineer (Level 2) – Cloud & Windows

Deswik Mining Consultants Pty Ltd

Greater London
Hybrid
GBP 40,000 - 60,000
22 days ago

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Senior ML Platform Architect: SageMaker & MLOps
London Stock Exchange Group
Greater London
On-site
GBP 125,000 - GBP 150,000
Full time
10 days ago
Job description
LSEG (London Stock Exchange Group) is more than a diversified global financial markets infrastructure and data business. We are dedicated, open-access partners with a dedication to excellence in delivering the services our customers expect from us. With extensive experience, deep knowledge and worldwide presence across financial markets, we enable businesses and economies around the world to fund innovation, manage risk and create jobs. It’s how we’ve contributed to supporting the financial stability and growth of communities and economies globally for more than 300 years. Through a comprehensive suite of trusted financial market infrastructure services – and our open-access model – we provide the flexibility, stability and trust that enable our customers to pursue their ambitions with confidence and clarity.LSEG is headquartered in the United Kingdom, with significant operations in 70 countries across EMEA, North America, Latin America and Asia Pacific. We employ 25,000 people globally, more than half located in Asia Pacific. LSEG’s ticker symbol is LSEG.**Our People:**People are at the heart of what we do and drive the success of our business. Our culture of connecting, creating opportunity and delivering excellence shape how we think, how we do things and how we help our people fulfil their potential. We embrace diversity and actively seek to attract individuals with unique backgrounds and perspectives. We break down barriers and encourage teamwork, enabling innovation and rapid development of solutions that make a difference. Our workplace generates an enriching and rewarding experience for our people and customers alike. Our vision is to build an inclusive culture in which everyone feels encouraged to fulfil their potential.We know that real personal growth cannot be achieved by simply climbing a career ladder – which is why we encourage and enable a wealth of avenues and interesting opportunities for everyone to broaden and deepen their skills and expertise. As a global organisation spanning 70 countries and one rooted in a culture of growth, opportunity, diversity and innovation, LSEG is a place where everyone can grow, develop and fulfil your potential with meaningful careers.## **Role Summary**We are seeking a Principal Machine Learning Engineer (SageMaker, MLOps, Model Governance & Explainability) to provide technical leadership across the full lifecycle of machine learning systems powering a new matching platform. This role is accountable for defining ML architecture, establishing engineering standards, driving MLOps maturity, and ensuring that our models are scalable, secure, explainable, and governed to enterprise‑grade standards.You will contribute to the strategic direction of our ML platform—spanning data pipelines, model development, deployment automation, inference runtime design, telemetry, drift detection, and cross‑account productionisation. You will mentor engineers, influence product and architectural decisions, and ensure that our ML systems operate reliably at scale, underpinned by a robust governance and compliance framework.This is a highly hands‑on, highly technical, principal‑level role that combines architectural vision with deep practical expertise in ML engineering and AWS-native MLOps.# **Key Responsibilities**## **Technical Leadership & Architecture*** Define the end‑to‑end ML architecture for the matching platform, including data pipelines, model training workflows, inference runtimes, and telemetry ecosystems.* Lead adoption of best‑in‑class MLOps patterns, platform tooling, and AWS SageMaker capabilities across training, processing, registry, monitoring, and deployment.* Partner with platform, security, and data engineering teams to implement scalable data lakehouse oriented feature architectures and enterprise‑grade ML governance.* Champion engineering standards for model quality, documentation, observability, and platform resilience.## **Feature Engineering & Data Architecture*** Architect highly scalable, production‑ready feature pipelines within Lakehouse environments.* Set the technical direction for fallback and resilience strategies (e.g., fallback pipelines).* Establish and enforce data‑quality guardrails, validation schemas, and monitoring frameworks.* Drive adoption and standards for enterprise feature stores.## **Model Development & Technical Excellence*** Lead the design of ranking, scoring, and similarity models tailored to the matching platform requirements.* Define model calibration, scoring logic, confidence thresholds, and optimisation strategies.* Mentor teams on advanced ML techniques using Model frameworks such as PyTorch, TensorFlow, and XGBoost.* Review and approve technical designs for complex modeling workflows.## **Explainability & Regulatory-Grade Reasoning*** Establish explainability standards across the ML stack, using SHAP or equivalent frameworks.* Define patterns to generate regulator‑ready reason codes, aligned with compliance requirements.* Ensure explainability artefacts are accurate, robust, and traceable across model versions.## **ML Deployment & Automation (MLOps)*** Architect automated training, deployment, and retraining pipelines using AWS SageMaker.* Set standards for model registry usage, automated approvals, and rollback orchestration.* Drive infrastructure-as-code and CI/CD maturity for ML systems across multiple environments.* Lead design of enterprise‑wide weight‑update patterns and lineage‑aware deployment strategies.## **Inference Runtime & Cross‑Account Productionisation*** Architect low‑latency, high‑throughput inference services that meet strict matching platform SLAs.* Lead the design of secure cross‑account IAM patterns for model consumption.* Own end‑to‑end telemetry design, including scoring metrics, latency, error analytics, and SLOs.* Partner with platform teams to optimise cost, scale, and reliability of inference endpoints.## **Monitoring, Drift Detection & Observability*** Define observability standards for feature drift, concept drift, performance degradation, and data integrity.* Lead the creation of dashboards, benchmarks, and automated alerting across the ML ecosystem.* Ensure telemetry pipelines adhere to privacy, data minimisation, and compliance policies.* Drive adoption of proactive failover, shadow-mode testing, and continuous validation patterns.## **Security, Compliance & ML Governance*** Set and enforce ML-specific security standards including data minimisation, encryption, and PII handling.* Oversee creation of Model Cards, lineage artefacts, and compliance documentation.* Ensure ML systems meet governance standards for auditability, reproducibility, versioning, and traceability.* Collaborate with InfoSec and Risk teams to define ML governance frameworks and secure cross‑environment workflows.## **Testing, Validation & Performance Engineering*** Lead validation strategies using golden datasets, behavioural tests, and benchmark suites.* Architect performance testing for latency‑sensitive inference paths and model hot paths.* Establish standards for A/B testing, shadow deployments, canary rollouts, and controlled experiments.# **Principal-Level Skills & Experience**## **Essential*** Proven track record architecting and delivering production ML systems at scale in enterprise environments.* Deep expertise with AWS SageMaker (training, processing, pipelines, endpoints, registry) and complementary AWS services.* Expert-level Python and ML Model frameworks (e.g. PyTorch, TensorFlow, XGBoost).* Strong thought leadership in MLOps automation, CI/CD for ML, and model lifecycle management.* Advanced experience designing explainability systems, reason codes, and governance artefacts.* Expertise in low‑latency inference architectures and real-time model serving.* Strong grounding in drift detection, telemetry pipelines, observability patterns, and model QA.* Experience
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* The salary benchmark is based on the target salaries of market leaders in their relevant sectors. It is intended to serve as a guide to help Premium Members assess open positions and to help in salary negotiations. The salary benchmark is not provided directly by the company, which could be significantly higher or lower.

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