Nearmap

Senior Machine Learning Engineer

Nearmap Warsaw, Masovian Voivodeship, Poland

Technology, Information and Internet · 501-1,000 employees

5 h ago
machine-learning Senior (5-10 yrs) Full-time Poland
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About the role

The role involves designing, building, and maintaining scalable MLOps systems and microservices to support large-scale data workflows. You will also collaborate with data scientists to streamline the deployment of generative and agentic AI while ensuring system reliability through observability tools.

What they look for

Python MLOps Kubernetes Kafka AWS GCP Terraform Prometheus Grafana OpenTelemetry CI/CD Distributed systems Microservices API development Test-driven development Generative AI

Requirements

Candidates must have at least 5 years of professional experience in MLOps, DevOps, or software engineering with a strong background in distributed systems. A bachelor's or master's degree in computer science or a related field is required, along with proficiency in Python, Linux, and cloud infrastructure.

Benefits

Sport card Medical care Mental and physical wellbeing support Employee referral program Nearmap subscription

Full description

Company Description

Property intelligence is reshaping how the world understands the built environment, and Nearmap is driving that. We put powerful aerial imagery, AI-driven analytics, and geospatial tools into the hands of the people who plan, build, insure, and govern the places we all live and work. Our technology turns property uncertainty into decisive action, and our culture brings out the best in the people who build it.

We move fast, we care about craft, and we're proud of what we're building. If you're energized by turning hard problems into real-world impact, we'd love to meet you.

Job Description

  • Execute software engineering tasks to support end-to-end machine learning operations, with a focus on scaling workflows for large data and distributed systems
  • Design, build, and maintain MLOps systems, including microservices, queuing systems, APIs, and orchestration workflows using Python, Kubernetes, Kafka, and modern database systems.
  • Implement observability tools such as Prometheus and Grafana to ensure reliability, performance, and visibility of ML systems in production
  • Collaborate closely with data scientists and machine learning engineers to streamline workflows for LLM, generative AI, and Agentic AI development and deployment.
  • Review architecture and implementation plans to ensure alignment with organizational goals, scalability, and best practices.
  • Mentor junior and mid-level engineers, fostering a culture of collaboration, innovation, and operational excellence

Qualifications

Education & Experience

 

  • Bachelor’s or Master’s degree in Computer Science, Engineering, or a related technical field.
  • 5+ years of professional experience in MLOps, DevOps, or Software Engineering, with a focus on building scalable and reliable software systems.

 

Core Technical Expertise

 

  • Proficiency in Python and Linux, with strong knowledge of designing scalable, distributed systems.
  • Hands-on experience in designing, implementing, and maintaining MLOps workflows, including CI/CD pipelines, monitoring, and production optimization.
  • Strong background in cloud computing (AWS/GCP), infrastructure as code (Terraform), containerization, and orchestration (Kubernetes).
  • Solid understanding of modern software development practices such as test-driven development (TDD), systems thinking, and CI/CD automation.

 

Observability & Reliability

 

  • Experience deploying and managing observability tools such as Prometheus, Grafana, and OpenTelemetry to ensure high reliability and performance in production ML systems.
  • Expertise in scaling and optimizing distributed systems for large-scale, multi-node computations.

Additional Information

What we offer: 

  • Sport Card (MultiSport)
  • Medical care
  • MultiLife (mental and physical wellbeing)
  • Attractive employee referral program
  • Nearmap subscription (naturally)

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