Senior Data Engineer

EPAM Systems

Colombia

Presencial

COP 120.000.000 - 210.000.000

Jornada completa

Hace 5 días
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Ventajas ofrecidas por este puesto de trabajo

Healthcare benefits
Paid time off
Upskilling & certification

Descripción de la vacante

EPAM Systems is seeking a Senior Data Engineer to lead design, development, and maintenance of data pipelines and ML workflows on the Domino Data Lab platform. You will focus on data engineering and MLOps, building reliable pipelines, and ensuring secure, efficient data and compute infrastructure.

The role collaborates with data scientists and engineers, emphasizes best practices, automation, and continuous improvement of internal tools and processes across international teams.

Formación

  • 3+ years of relevant experience.
  • Strong hands-on with Domino Data Lab platform and end-to-end pipelines.
  • Expert-level Python for data engineering and pipelines.
  • Strong SQL for data extraction and transformation.
  • Experience with R and Bash in data science tooling.
  • ETL/ELT pipeline design, ingestion, transformation, validation, orchestration.
  • Kubernetes with EKS/AKS/GKE and deploying data/ML workloads.
  • Docker for container images in data/ML workloads.
  • CI/CD pipelines with Jenkins, GitLab CI, GitHub Actions, or Azure DevOps.
  • Experience with AWS/Azure/GCP cloud platforms and data architectures.
  • Proficient English (B2+).

Responsabilidades

  • Build and maintain dependable data pipelines for analytics and ML workloads.
  • Oversee full data workflow lifecycle: ingestion, transformation, delivery.
  • Manage compute infrastructure for efficient, secure platform operations.
  • Diagnose and resolve pipeline performance and data quality issues.
  • Collaborate with data scientists and engineers to meet tooling needs.
  • Define best practices for platform usage and pipeline design.
  • Automate testing and deployment to improve reliability.
  • Monitor pipeline health and preempt failures and bottlenecks.
  • Contribute to internal tooling and process improvements for data ops.
  • Document designs, workflows, and configurations for team knowledge sharing.

Conocimientos

Python
SQL
Bash
R
Docker
Kubernetes
CI/CD
AWS
Azure
GCP
English (B2+)

Herramientas

Domino Data Lab
Jenkins
GitLab CI
GitHub Actions
Azure DevOps
Kubeflow

Descripción del empleo

EPAM is a leading global provider of digital platform engineering and development services. We are committed to having a positive impact on our customers, our employees, and our communities. We embrace a dynamic and inclusive culture. Here you will collaborate with multi-national teams, contribute to a myriad of innovative projects that deliver the most creative and cutting-edge solutions, and have an opportunity to continuously learn and grow. No matter where you are located, you will join a dedicated, creative, and diverse community that will help you discover your fullest potential.

We are looking for a Senior Data Engineer to head the design, development, and upkeep of data and ML pipelines on the Domino Data Lab platform. This position centers on the data engineering and MLOps aspects of Domino, constructing dependable data pipelines, overseeing model lifecycle workflows, and keeping the platform's data and compute infrastructure running efficiently and securely. This is not a front-end or application development role.

Responsibilities
  • Build and sustain dependable data pipelines that power analytical and machine learning workloads
  • Handle the full lifecycle of data workflows, spanning ingestion, transformation, and delivery
  • Manage compute infrastructure to keep platform operations efficient, secure, and dependable
  • Diagnose and resolve issues that affect pipeline performance and data quality
  • Work alongside data scientists and other engineers to meet their infrastructure and tooling requirements
  • Define and champion best practices around platform usage, pipeline design, and data workflow structure
  • Introduce automation into testing and deployment processes to boost reliability and cut down manual work
  • Keep watch over pipeline health and get ahead of bottlenecks or failures before they escal
  • Help drive continuous improvement of internal tools and processes that support data operations
  • Record technical designs, workflows, and configurations to enable knowledge sharing throughout the team
Requirements
  • At least 3 years of relevant experience
  • Deep hands-on experience with the Domino Data Lab platform, including Data Sources and Connectors, Datasets, Environments, Projects, Jobs, and Flows, with the ability to architect and troubleshoot end-to-end data pipelines and promote best practices for platform usage
  • Expert-level command of Python as the main language for data engineering and pipeline development
  • Strong SQL skills for extracting, transforming, and optimizing data across relational and warehouse systems
  • Comfortable using R and Bash across the wider data science toolchain and for scripting automation
  • Proven experience designing, constructing, and maintaining ETL/ELT pipelines, including data ingestion, transformation, validation, and orchestration
  • Practical experience with Kubernetes and managed offerings such as EKS, AKS, or GKE, with the ability to deploy, debug, and fine-tune cluster workloads running data and ML jobs
  • Experience creating, optimizing, and troubleshooting container images for data and ML workloads using Docker
  • Experience establishing and maintaining CI/CD pipelines using tools such as Jenkins, GitLab CI, GitHub Actions, or Azure DevOps to automate testing and deployment of data pipelines and ML workflows
  • Working familiarity with at least one major cloud provider, such as AWS, Azure, or GCP, with the ability to evaluate data architecture, cost, and security trade-offs
  • Excellent English proficiency (B2 level or higher)
Nice to have
  • Experience with Domino Nexus or hybrid/multi-cloud compute orchestration
  • Experience delivering ML workflows spanning training, deployment, monitoring, and retraining, with an understanding of reproducibility and versioning
  • Practical experience with GenAI, LLMs, or agentic frameworks, including retrieval-augmented generation (RAG), from a data pipeline perspective
  • Familiarity with orchestration tools such as MLflow, Kubeflow, Airflow, or Domino Flows
  • Knowledge of model governance, compliance automation, or audit logging frameworks
  • Experience working within pharma, BFSI, or public sector environments
We offer
  • International projects with top brands
  • Work with global teams of highly skilled, diverse peers
  • Healthcare benefits
  • Employee financial programs
  • Paid time off and sick leave
  • Upskilling, reskilling and certification courses
  • Unlimited access to the LinkedIn Learning library and 22,000+ courses
  • Global career opportunities
  • Volunteer and community involvement opportunities
  • EPAM Employee Groups
  • Award-winning culture recognized by Glassdoor, Newsweek and LinkedIn

EPAM is an Equal Opportunity Employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, national origin, age, sexual orientation, gender identity or expression, disability, protected veteran status, or any other characteristic protected by applicable law.

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