Machine Learing Engineer
Remote / Online - Candidates ideally in
Sunbury-on-Thames, Surrey County, KT12 2AP, England, UK
Listed on 2026-07-20
Sunbury-on-Thames, Surrey County, KT12 2AP, England, UK
Listing for:
BP PLC
Full Time, Remote/Work from Home
position Listed on 2026-07-20
Job specializations:
-
Software Development
Machine Learning/ ML Engineer, AI Engineer (Applied/Software)
Job Description & How to Apply Below
## Staff Machine Learing Engineer Apply remote type:
This position is a hybrid of office/remote working locations:
United Kingdom - Sunburytime type:
Full time posted on:
Posted Todaytime left to apply:
End Date:
July 31, 2026 (13 days left to apply) job requisition :
RQ113361
** Entity:
** Technology
* * Job Family Group:
** IT&S Group
*
* Job Description:
**##
** Equal Opportunity Employer
** bp is an equal opportunity employer. We believe that diversity and inclusion drive innovation and are crucial to our success. We welcome applications from all qualified individuals regardless of race, colour, religion, gender, sexual orientation, gender identity, national origin, disability, veteran status, or any other legally protected characteristic.
We are committed to making reasonable adjustments for candidates with disabilities or long-term conditions. If you require any adjustments during the recruitment process, please let us know.##
** Role Summary
** We are seeking an exceptional Staff Machine Learning Engineer to serve as a technical leader and architect of machine learning systems across the organisation.
This is the highest individual contributor tier within the field — a role for engineers and scientists who not only build world-class ML systems but define how they are built. You will shape architectural direction, establish engineering and scientific standards, and drive the delivery of complex, high-impact ML products that span the journey from research and experimentation through to solutions.
A core differentiator of this role is deep applied machine learning science: the ability to develop, validate, and deploy novel ML algorithms and scientific models as reliable, maintainable products — bridging the gap between innovative research and enterprise-scale deployment. You will influence multiple teams, mentor senior engineers, and drive step-change impact across business-critical, scientific, and R&D domains.##
** Key Responsibilities
*** Provide technical leadership in the design and architecture of large-scale, production-grade ML systems and platforms across the organisation.
* Own end-to-end delivery of complex ML solutions — from scientific problem framing and algorithm design through to deployment, operationalisation, and product delivery.
* Apply advanced machine learning science to develop novel algorithms and models, ensuring they are rigorously validated and deployed as scalable, reliable, production-grade products.
* Bridge the gap between scientific research and enterprise deployment — taking ML innovations from experimentation through to productised, maintainable solutions that deliver measurable value.
* Drive engineering excellence across ML systems, including CI/CD, testing, observability, reliability, and MLOps guidelines.
* Define technical standards, patterns, and protocols for ML engineering and applied ML science across teams.
* Lead complex, multi-team technical initiatives and influence organisational direction through technical authority.
* Evaluate and integrate emerging approaches — including generative AI, Agentic AI, advanced optimisation, and scientific computing — into scalable solutions.
* Supply to and shape internal ML platforms, reusable frameworks, and shared scientific computing capabilities.
* Mentor senior engineers and data scientists, raising the technical bar across the subject area.
* Partner with business and scientific customers to shape ML strategy and identify high-value opportunities.
* Present technical strategies, architectural decisions, and outcomes to senior leadership.##
** Qualifications
* *** Essential
* ** MSc, PhD degree or equivalent experience in a quantitative field (e.g. Computer Science, Mathematics, Physics, Engineering, or related subject area).
* Hands-on experience designing, prototyping, product ionizing, and scaling complex ML systems in production environments.
* Deep and demonstrable expertise in machine learning algorithms, statistical modelling, optimisation techniques, and scientific computing — with a consistent record of applying these to deliver production-grade products.
* Strong software engineering and system design expertise, including…
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