Added: 2026-05-14 16:27.04
Updated: 2026-05-25 19:05.04

Principal AI/ML Engineer

Barcelona, Spain

Type: Games

Category: Data Scientist

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Skill needed: Python, Machine Learning.
Employer: King

At King, we create games that are played by millions around the world. To keep raising the bar on quality and player experience, we invest deeply in applied AI/ML — from improving how we build game content to optimising live game decisions at scale.Your role within the KingdomWe’re looking for a passionate and creative Principal AI/ML Engineer to join the ML Special Projects team, part of King’s AI Center of Excellence (ACE) — a central team that partners with game and shared tech teams to build, ship, and scale machine learning systems that deliver real product impact. As a member of the team, you will be working closely with other AI/ML Engineers, Data Scientists, and Product Managers supporting them to develop and operationalize ML models as part of King’s central AI/ML initiatives.This is a hands-on, high-ownership role. You will take problems from discovery and experimentation through to reliable production systems, and help set engineering standards for how ML is built and adopted across King. You are someone who is interested in pushing the boundaries of applied ML in our products and production, improving the experience for over 250 million monthly active users in our games!What you’ll work onYou’ll work on a range of applied ML problems across King, with a strong focus on initiatives that have clear product and production impact. While priorities will evolve, much of the work will center around the following areas:Level, Content & Production AutomationML-driven playtesting, quality signals, and simulation to accelerate iteration of content creation and evaluationContent evaluation and optimisation to improve the speed, reliability, and scalability of level production workflowsWhere appropriate, reinforcement learning and other sequential or simulation-based approaches to model gameplay and player behaviorDecision AutomationModels and decision policies which improve the experience of our players Online learning and experimentation systems (e.g., contextual bandits or similar approaches) with strong safety and evaluation guardrailsMeasurement frameworks that connect proxy metrics to long-term business and player outcomes Additional applied ML initiativesRepresentation learning and player modelling on large-scale event or time-series data to enable downstream use casesFoundational ML capabilities, tooling, or services that help product teams adopt and operate ML more effectivelyExploration of new ML-driven opportunities as games, tools, and business needs evolveWhat you’ll doDrive end-to-end ML delivery: problem framing → data & features → modelling → evaluation → deployment → monitoring and iterationBuild and maintain robust pipelines (batch and/or streaming) for training and inference, with strong reproducibility and observabilityDesign offline + online evaluation strategies, balancing proxy metrics for game optimizationPartner with engineers, data scientists, product managers, and designers across the business to translate opportunities into shippable systemsRaise the bar on applied ML engineering best practices: reliable releases, clear scoping, defensible trade-offs, documentation, and maintainable handoverProvide technical leadership: coach others, influence architecture, and contribute to long-term ML platform and product strategySkills to create thrillsProven track record delivering production ML systems end-to-end in consumer products or similarly complex environmentsStrong software engineering skills (Python), with experience in modern ML frameworks (e.g., PyTorch/TensorFlow)Experience building or operating data/ML pipelines at scale (batch and/or streaming), and working effectively with large datasetsSolid understanding of experiment design, evaluation and metrics, including how to reason about bias, drift, and measurement pitfallsDeep expertise in at least one of the following areas (and willingness to learn others):causal inference contextual bandits / online learning & decisioningreinforcement learning / simulation-based evaluationStrong operational mindset: CI/CD, infrastructure-as-code or equivalent, monitoring/alerting, and debugging in real-world systemsExcellent communication, collaboration, and stakeholder management skills: ability to align stakeholders and drive progress across teamsStrong leadership skills to coach and mentor more junior team membersNice to haveExperience building ML tooling/platform capabilities Experience in games (mobile, console, casual, or otherwise) and curiosity about how gameplay connects to player experience and spending behaviorContributions to open source or community ML toolingOur tech environment (examples)Python, modern ML stacks (PyTorch/TensorFlow), experiment tracking and evaluation at scaleBatch and streaming data processing; cloud data platforms and ML infrastructureGit-based workflows, CI/CD, infrastructure-as-code, monitoring and observability practicesGoogle Cloud, BigQuery, SQLWhy joinWork on ML problems that ship into real products, not just prototypesOperate at massive scale, with real constraints and real impactInfluence how ML is built and adopted across multiple teams and domainsJoin a group that values pragmatic engineering, principled measurement, and clear communicationLocationsStockholm, London, BarcelonaAbout KingWith a mission of Making the World Playful, King is a leading interactive entertainment company with more than 20 years of history of delivering some of the world’s most iconic games in the mobile gaming industry, including the world-famous Candy Crush franchise, as well as other mobile game hits such as Farm Heroes Saga. King games are played by more than 200 million monthly active users. King, part of Microsoft (NASDAQ: MSFT), has Kingsters in Stockholm, Malmö, London, Barcelona, Berlin, Dublin, San Francisco, New York, Los Angeles and Malta.
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