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Principal Data Scientist

Job in Greater London, London, Greater London, W1B, England, UK
Listing for: Vortexa
Full Time position
Listed on 2026-09-13
Job specializations:
  • IT/Tech
    Machine Learning/ ML Engineer, AI Engineer (Applied/Software), Data Scientist, Data Engineering
Salary/Wage Range or Industry Benchmark: 90000 - 150000 GBP Yearly GBP 90000.00 150000.00 YEAR
Job Description & How to Apply Below
Location: Greater London

Vortexa is a fast-growing international technology business founded to solve the immense information gap that exists in the energy industry. By using massive amounts of new satellite data and pioneering work in artificial intelligence, Vortexa creates an unprecedented view on the global seaborne energy flows in real-time, bringing transparency and efficiency to the energy markets and society as a whole.

Ingesting data from multiple external vastly different sources at hundreds of rich data points per second, moving terabytes of data while processing it in real time, running complex and complicated prediction and forecasting AI models while coupling their output into a hybrid human-machine data refinement process and presenting the result through a nimble low-latency SaaS solution used by customers around the globe is no small feat of science and engineering.

Thisprocessingrequires a unique fusion of humans and machines, close collaboration between and deepexpertisefrom data analysts, data scientists, industryexpertsand the end users.

Vortexa'sData Platform, designed,developedandmaintainedby the Data Production Team, is a cloud-native ecosystem that powers the full lifecycle of our data and intelligence products. It integrates large-scale data pipelines, machine-learning models, AI agents, human-in-the-loop systems, and microservices to collect, process, connect, and govern global energy-flow data s platform underpins analytics, operational workflows, and real-time decision-making across the company. Our models ingest and interpret a diverse range of data, from satellite imagery and sensor feeds for millions of energy assets to unstructured commercial and operational shipping data such as customs filings, fixtures, and SPAs.

These inputs drive predictive systems that support energy-demand forecasting, anomaly detection, and real-time recommendations for physical and derivative trading.

What You'll Be Doing

As a Principal Data Scientist, reporting to Vortexa'sVP of Data Production, you will be the subject-matter authority for data science-the person the company turns to on the problems no one has cracked yet-and you will play a central role in designing, implementing, and deploying advanced AI/ML methodologies and production-grade systems. Your work will be held to the scrutiny of energy analysts, traders, operationsteamsand regulatory stakeholders, and must meet the performance, reliability and robustness standardsrequiredfor critical energy infrastructure.

You will be:

  • Working on frontier problems: where there is no obvious baseline,benchmarkor established definition of success. You will be expected to define what good looks like, and bring the rigour needed to reach a meaningful conclusion.
  • Raising the ceiling on models already in production: working closely with the pods that ownto make live predictions measurably better.
  • Taking problems end-to-end: moving across pods and owning substantial projects frominitialexplorationall the way through tolong-term maintenance,ultimately delivering robust, production-grade solutions.
  • Turning research into impact:identifying emerging approaches, formulating hypotheses, designing rigorous experiments, evaluating newtechniquesand translating research into practical solutions that work in the real world.
  • Building the capability of Data Science:through technical review, pairing and mentoring, setting the standards for how we work, and by being the person analysts, engineers and product managers bring their hardest questions to.
  • Leading the Data Science Guild:setting the technical agenda and creating the forum where the significant questions across the practice are surfaced,challenged and worked through.
You Are
  • A demonstrably strategic, high-impact individual contributor: experienced enough to lead complex projects across Data Science, Machine Learning and AI, whileremaininghands-on and capable of building and deploying production-grade models.
  • Deeply grounded in ML/AI: strong in the theoretical and mathematical foundations of the field, with the ability to engage critically with current research and emerging methodologies.
  • Engineering-grounded across the full ML lifecycle: comfortable owning your own code to production standard, from experiment design and model development through validation, deployment,monitoring and long-term maintenance.
  • Deeply trained in a quantitative discipline, ideally educated to PhD level in Computer Science, Statistics, Applied Mathematics,Physicsor a related field.…
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