P

Senior ML/AI Engineer

Remote
This Job is No Longer Active This position is no longer accepting applications
AI Summary

Join the AI Engineering team to implement Machine Learning models into production, design and deliver GenAI solutions, and establish strong ML/LLM operational standards. Work closely with Data Science teams to industrialize ML pipelines, scale AI systems, and embed best practices across the ML lifecycle. This is a fully remote role based in Poland.

Key Highlights
Implement ML models into production
Design and deliver GenAI solutions
Establish strong ML/LLM operational standards
Key Responsibilities
Work closely with Data Science teams to implement ML models into production
Design and deliver GenAI solutions
Build practical, scalable implementations of LLM/ML/AI automation
Technical Skills Required
Python MLOps / LLMOps tools (AzureML / AzureAI) Databricks Spark / PySpark Cloud platforms (Azure or GCP)
Benefits & Perks
Stable employment
Fully remote or office-based model
Flexible working hours and contract type

Job Description


We are looking for a Senior ML/AI Engineer to join the AI Engineering team within the Data Science & AI Competency Center. This role focuses on implementing Machine Learning models into production, designing and delivering GenAI solutions, and establishing strong ML/LLM operational standards. You will work closely with Data Science teams to industrialize ML pipelines, scale AI systems, and embed best practices across the ML lifecycle.

This is a fully remote role based in Poland.

Role Details

Location: Remote (Poland)

Employment Type: Full-time

Seniority Level: Senior

Start Date: Flexible (1-month notice preferred; up to 3 months acceptable)

The company has offices in Warsaw and Lublin. Candidates must have existing work authorization for Poland. Visa sponsorship is not specified.

The role is open to strong mid-level and outstanding junior candidates if they demonstrate high potential.

Mission & Context

The team delivers business solutions using Machine Learning and Data Science, with a strong focus on Forecasting and Customer Analytics. This role supports end-to-end ML and GenAI solution delivery — from technical architecture and deployment pipelines to operational excellence and scalability. The organization emphasizes diversity, equity, and inclusion and operates within a values-driven, collaborative environment.

Key Responsibilities

  • Work closely with Data Science teams to implement ML models into production
  • Design and deliver GenAI solutions
  • Build practical, scalable implementations of LLM/ML/AI automation
  • Design, deliver, and manage industrialized processing pipelines
  • Define and implement best practices across the ML model lifecycle
  • Implement AI/MLOps/LLMOps frameworks and support teams in operational standards
  • Apply modern techniques, tools, and frameworks in ML Architecture and Operations
  • Gather technical requirements and estimate delivery efforts
  • Present technical solutions and results to internal and external stakeholders
  • Create comprehensive technical documentation


Required Skills

  • Python
  • MLOps / LLMOps tools (AzureML / AzureAI strongly preferred)
  • Databricks
  • Spark / PySpark
  • Cloud platforms (Azure or GCP)


Requirements

  • 5+ years of Data Engineering experience
  • 5+ years of production-ready Python development
  • 3+ years of production-level ML-related code development
  • 1+ year of hands-on GenAI / LLM production implementation
  • Practical experience with MLOps / LLMOps tools (AzureML / AzureAI required)
  • Strong experience working with Databricks and Spark / PySpark
  • Experience working on major cloud platforms (Azure or GCP)
  • Without hands-on experience in MLOps/LLMOps tools, Databricks, Spark/PySpark, and cloud infrastructure, candidates should not proceed.


Candidate Profile

  • Has a strong Data Engineering foundation
  • Is experienced in scaling ML systems into production
  • Has real production experience with GenAI / LLM-based systems
  • Understands ML lifecycle governance and operationalization
  • Can independently design scalable ML architectures
  • Is comfortable presenting technical concepts to clients and stakeholders
  • Operates with strong ownership and documentation discipline


Benefits

  • Stable employment
  • Fully remote or office-based model
  • Flexible working hours and contract type
  • Workation policy
  • Comprehensive onboarding with assigned Buddy
  • Unlimited access to Udemy from day one
  • Certificate training programs and upskilling support
  • Capability development programs and Competency Centers
  • Knowledge-sharing sessions and community webinars
  • 110+ training opportunities annually
  • Internal promotions (76% of managers promoted internally)
  • Referral bonuses
  • Health and well-being initiatives
  • Inclusive, diverse, and values-driven culture
  • Modern office equipment
  • If useful, I can also prepare:
  • A technical screening questionnaire (GenAI + MLOps focused)
  • A candidate evaluation scorecard
  • A sourcing brief for senior ML engineers in Poland
  • A structured interview guide (ML architecture + operational depth)

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