Machine Learning Ops and Data Engineer

Posted 3 Days Ago
Be an Early Applicant
Hiring Remotely in Tallinn, Harju Maakond, EST
Remote
Junior
eCommerce • Fintech • Payments • Financial Services
The Role
Build and maintain ETL and data warehouse pipelines, deploy and monitor ML models in production, automate model lifecycle and CI/CD, troubleshoot performance, and collaborate with Data Science, BI, Risk, and IT teams.
Summary Generated by Built In
About the role

This role combines data platform engineering and MLOps responsibilities, supporting both reliable analytical data flows and production-ready machine learning solutions. The person will maintain and improve ETL pipelines, support the data platform environment, and help deploy, monitor, and optimize machine learning models in production. The role requires close cooperation with Data Science, Engineering, BI, Risk, and IT teams to ensure that data and model processes are scalable, well-documented, stable, and aligned with business needs.

Key Responsibilities

As a Data Platform and MLOps engineer, you will be part of our Data Platform team and play an important role in our daily operations. Your responsibilities will include:

  • Deploy machine learning models into production environments and support their operational lifecycle.

  • Support cloud-based analytical, reporting, and machine learning infrastructure.

  • Collaborate closely with Data Science, Engineering, Risk, BI, and IT teams to align data and model requirements with production standards.

  • Develop automation for model deployment, updates, scaling, and recurring data processing tasks.

  • Implement monitoring for both data pipelines and machine learning models, including performance, availability, and quality checks.

  • Ensure reliable operation and continuous development of the analytical data warehouse environment.

  • Design, maintain, troubleshoot, and optimize ETL/data pipelines supporting reporting, analytics, and machine learning use cases.

  • Ensure timely and high-quality data availability for BI, Risk, Data Science, and other business stakeholders.

  • Identify, investigate, and resolve performance issues across data warehouse, ETL, and model deployment processes.

  • Troubleshoot, debug, upgrade, and improve existing software, pipelines, and deployment processes.

  • Gather and evaluate user feedback, recommend improvements, and execute enhancements.

  • Maintain technical documentation for data processes, model deployments, configurations, and operational procedures.

Qualifications and Experience

We are looking for someone who has:

  • 2+ years of experience in data engineering and machine learning

  • Strong Python programming skills and intermediate SQL knowledge

  • Good understanding of databases, data warehouse concepts, and ETL processes

  • Understanding of machine learning lifecycle and model operationalization

  • Using LLM’s to generate and optimize code, ability to use AI platform features to enhance and speed up workflows

  • Knowledge of DevOps practices, CI/CD pipelines, and version control

  • Experience with cloud-based analytical and reporting solutions, preferably Azure

  • Familiarity with machine learning frameworks and tools such as scikit-learn and XGBoost

  • Familiarity with containerization technologies such as Docker

  • Ability to monitor, troubleshoot, and optimize data pipelines, infrastructure, and deployed models

  • Experience with software design, development, debugging, and documentation

  • Proficient English, B1/B2 level or higher.

What we Offer
  • A friendly and collaborative team culture

  • The opportunity to learn from experienced colleagues and grow within IT

  • A modern technical environment with room for improvement and innovation

  • A workplace where teamwork, curiosity, and continuous improvement are valued

Skills Required

  • 2+ years of experience in data engineering and machine learning
  • Strong Python programming skills
  • Intermediate SQL knowledge
  • Understanding of databases, data warehouse concepts, and ETL processes
  • Understanding of machine learning lifecycle and model operationalization
  • Using LLMs to generate and optimize code and using AI platform features
  • Knowledge of DevOps practices, CI/CD pipelines, and version control
  • Experience with cloud-based analytical and reporting solutions, preferably Azure
  • Familiarity with machine learning frameworks such as scikit-learn and XGBoost
  • Familiarity with containerization technologies such as Docker
  • Ability to monitor, troubleshoot, and optimize data pipelines, infrastructure, and deployed models
  • Experience with software design, development, debugging, and documentation
  • Proficient English (B1/B2 level or higher)
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The Company
271 Employees
Year Founded: 1987

What We Do

TF Bank is a digital bank offering consumer banking services and e-commerce solutions through a proprietary IT platform. It provides deposit products, unsecured consumer loans, digital payment solutions, and credit cards across multiple European countries.

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