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MLOps Engineer – Portfolio Optimisation and Customer Analytics Platform (Banking)

Role overview

Qualifications

  • Strong experience in MLOps or ML platform engineering
  • Solid Python skills for automation and tooling
  • Hands on experience with Docker and Kubernetes
  • Practical experience with MLflow or similar model lifecycle management tools

Responsibilities

  • Design and operate training and deployment pipelines for analytical and optimisation models
  • Automate model retraining, validation, and promotion processes
  • Ensure reproducibility and consistency across development, testing, and production environments
  • Monitor performance, stability, and reliability of ML pipelines

Key facts

  • Remote from: Anywhere
  • Full time
  • English

Hard skills

Other skills

  • Collaboration

About the company

Madiff logo

Madiff

Artificial Intelligence & Machine Learning Services

We are an international Innovation, IT and high-tech engineering consulting company that delivers unique value in a wide variety of industries. Our mission is to add value to our customers businesses by providing digital and technological innovation services, delivering disruptive results and making our clients stand out in their market. We are driven by a creative and innovative consulting approach strongly oriented to getting results. We MAKE THE DIFFERENCE. Poland | UK | Switzerland | USA | Norway | Portugal | Spain | France | Singapore Warsaw Prosta 20 Wrocław Rybacka 7 Lublin Grottgera 2

Company details

IndustryArtificial Intelligence & Machine Learning Services
Company size51 - 200

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Job description

This is a remote position.

We are looking for an MLOps Engineer to support an enterprise analytics and optimisation platform within an international banking environment. The platform underpins pricing, capital allocation, and customer lifetime value decisions across multiple markets and product lines.It operates at scale with regular model retraining cycles and governed analytics processes. Analytical outputs feed both traditional reporting layers and LangChain and LangGraph based GenAI workflows that generate automated insights and scenario analysis. This role focuses on operationalising analytical models and ensuring stable, repeatable production workflows.
Responsibilities
  • Design and operate training and deployment pipelines for analytical and optimisation models
  • Automate model retraining, validation, and promotion processes
  • Ensure reproducibility and consistency across development, testing, and production environments
  • Support scalable analytical workloads across cloud platforms
  • Enable structured exposure of model outputs to LangChain and LangGraph workflows
  • Monitor performance, stability, and reliability of ML pipelines
  • Collaborate closely with data scientists and analytics teams to streamline experimentation to production


Requirements

  • Strong experience in MLOps or ML platform engineering
  • Solid Python skills for automation and tooling
  • Hands on experience with Docker and Kubernetes
  • Practical experience with MLflow or similar model lifecycle management tools
  • Experience with workflow orchestration tools such as Airflow
  • Hands on experience with CI/CD pipelines
  • Experience working with cloud data platforms
  • Strong understanding of reproducibility and environment management
  • Fluent English for professional collaboration

    Nice to have

  • Experience integrating ML outputs with LangChain or LangGraph workflows
  • Exposure to banking, finance, or regulated environments
  • Experience with optimisation models or large scale analytical platforms
  • Understanding of data governance and audit requirements


Benefits

  • Solid, competitive salary
  • Work in a multinational environment on international projects
  • Comprehensive healthcare
  • Long-term B2B contract with a stable project pipeline
  • Remote work model


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MR

Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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