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Nebius
Nebius

Senior Applied ML Engineer (Agentic Search)

engineeringfull-timeAmsterdam, Netherlands; London, United Kingdom; Remote - Europe
SALARY
Not listed
WORK TYPE
remote
JOB TYPE
full-time
INDUSTRY
ai
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About the role

About Nebius:

Nebius is leading a new era in cloud infrastructure for the global AI economy. We are building a full-stack AI cloud platform that supports developers and enterprises from data and model training through to production deployment, without the cost and complexity of building large in-house AI/ML infrastructure.

Built by engineers, for engineers. From large-scale GPU orchestration to inference optimization, we own the hard problems across compute, storage, networking and applied AI.

Listed on Nasdaq (NBIS) and headquartered in Amsterdam, we have a global footprint with R&D hubs across Europe, the UK, North America and Israel. Our team of 1,500+ includes hundreds of engineers with deep expertise across hardware, software and AI R&D.

Your responsibilities:

  • Design, train, and deploy ML models for retrieval, reranking, and search relevance in production
  • Build and optimise embedding-based indexing and large-scale retrieval systems
  • Develop models supporting crawling, data selection, and content understanding
  • Define and improve quality metrics for agent-native search and build evaluation pipelines
  • Work on systems operating at very large scale, including high-throughput query workloads
  • Collaborate closely with engineering teams to integrate ML models into production services
  • Analyse performance trade-offs across latency, quality, and cost
  • Experiment with and apply state-of-the-art techniques in search, retrieval, and LLM-integrated systems
  • Contribute to product and architectural decisions in a fast-moving environment

Must-haves:

  • 5+ years of experience in software engineering or applied machine learning
  • Strong programming skills in Python, Go, or C++
  • Proven experience deploying ML models in production systems
  • Hands-on experience with retrieval, ranking, recommendation, or similar ML problems
  • Strong understanding of machine learning and modern deep learning techniques
  • Experience working with large-scale data systems and high-throughput environments
  • Ability to design evaluation frameworks and define meaningful model metrics
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