Senior Machine Learning Engineer (Python/MLOps)

econsulting

Warszawa

On-site

PLN 250,000 - 350,000

Full time

14 days+
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Benefits offered by this job

Private health insurance
Sports card
Group insurance
Free English lessons
Access to extensive training library
Sports activities

Job summary

econsulting is seeking a Senior Machine Learning Engineer to join our fast-growing team in Warsaw. This hybrid position is crucial for shaping the future of geospatial data analysis, utilizing a cutting-edge tech stack including Ray Serve and AWS.

You will take full engineering ownership of deploying advanced AI models and transforming large datasets into reliable, real-time services. The ideal candidate has extensive MLOps experience, solid software engineering fundamentals, and strong communication skills.

Qualifications

  • At least 5 years of industry experience writing Python.
  • Strong data engineering skills and hands-on experience with workflow orchestration tools.
  • A track record of deploying and operating ML models in production.

Responsibilities

  • Owning the deployment of new risk models into production.
  • Working with large-scale data sets and building custom workflows.
  • Embedding MLOps and CI/CD best practices into the workflow.

Skills

Python
Data engineering
SQL
MLOps
CI/CD
Communication skills

Education

Degree in Computer Science or related field

Tools

Airflow
Spark
AWS
Docker

Job description

Workplace: hybrid, Warsaw

Type of Contract: B2B

Join our fast-growing team as a Senior Machine Learning Engineer and shape the future of geospatial data analysis using a cutting‑edge tech stack, including Ray Serve and AWS. In this role, you will take full engineering ownership of deploying advanced AI models, transforming raw data at a scale of hundreds of millions of rows into reliable, real‑time services.

Key Responsibilities
  • Owning the deployment of new risk models and scores into production on Ray Serve, and lifting the Insurance AI team's deployment maturity.
  • Working with large‑scale data sets (hundreds of millions of rows) and building custom workflows on top of existing platform foundations.
  • Owning data transformation pipelines that turn semantic geospatial maps of a property into attributes suitable for categorical modelling.
  • Collaborating with platform and infrastructure engineers to ensure solutions run reliably on our large data sets and accelerated model inferencing.
  • Embedding MLOps and CI/CD best practice into the Insurance AI workflow, and feeding requirements back into the central platform.
Required Skills and Experience
  • At least 5 years of industry experience writing Python in a professional software or ML engineering context.
  • Strong data engineering skills, SQL, and hands‑on experience with workflow orchestration tools such as Airflow, Spark, or similar.
  • A track record of deploying and operating ML models in production, including serving infrastructure, monitoring, and the realities of keeping models healthy over time.
  • Solid software engineering fundamentals: clean, maintainable, well‑tested code, and fluency in a shared codebase (feature branches, pull request reviews, collaborative development).
  • Hands‑on MLOps and CI/CD experience.
  • Strong communication skills, including the ability to work with Data Scientists and other non‑platform engineers without losing the technical plot, and to mentor others in good engineering practice.
  • A degree in Computer Science or a related technical field, or equivalent practical experience.
Nice to have
  • AWS experience (S3, EC2, ECS).
  • Docker and containerised environments.
  • Experience with Ray or other distributed compute frameworks.
  • REST API integration at scale.
  • Familiarity with geospatial data.
What do we offer?
  • Benefits package (private health insurance, sports card, group insurance).
  • Free English lessons with a dedicated teacher.
  • Access to an extensive training library covering both soft and technical skills.
  • Sports activities.
  • Team‑building events, contests, and challenges.
  • Sales Incentive Program and Refer‑a‑Friend Program.
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