Data & AI Engineer Rotterdam

Sytac BV

Rotterdam

Hybrid

EUR 70,000 - 110,000

Full time

10 hours ago
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Job summary

Sytac BV in the Netherlands is seeking a Data & AI Engineer to join a dedicated Data & AI Platform team. You will deliver production-grade AI solutions, design intelligent agents, and build the data foundations that accelerate AI adoption across a global organization.

This hands-on role is built on an Azure + Databricks foundation, offering growth for an engineer eager to bridge core data engineering with cutting-edge Generative AI.

Qualifications

  • Bachelor’s or Master’s degree in Computer Science, Data Science, or related field.
  • Hands-on experience with Python and SQL for data engineering and ML.
  • Solid understanding of the Databricks ecosystem (Spark, Delta Lake, Workflows).
  • Demonstratable portfolio of projects showcasing data/AI solutions.

Responsibilities

  • Deliver end-to-end AI use cases with data pipelines, feature sets, models, and intelligent agents.
  • Build and operate Databricks lakehouse pipelines with batch and streaming data and quality checks.
  • Engineer advanced AI solutions focusing on RAG, tool-using agents, and prompts.
  • Enable business teams by creating reusable components, templates, and best practices for AI development.
  • Ensure operational excellence: reliability, cost control, and AI governance.

Skills

Proactive learner
Team collaboration

Education

Bachelor’s or Master’s degree in CS/Data Science

Tools

Python
SQL
Databricks (Spark/Delta Lake/Workflows)
Azure Cloud
Git
Terraform

Job description

At Sytac, we build high-performing engineering teams for leading organizations in the Netherlands and beyond. We combine a pragmatic, people-first culture with strong technical craftsmanship — giving engineers autonomy in real production environments, backed by a consultancy that invests in growth, community, and long-term partnerships.

For one of our key clients in the marine and engineering sector, we are looking for a Data & AI Engineer to join a dedicated Data & AI Platform team. You will be responsible for delivering production-grade AI solutions, designing intelligent agents, and building the data foundations that accelerate AI adoption across a global organization.

This is a hands-on role built on an Azure + Databricks foundation, offering a clear growth path for an engineer eager to bridge the gap between core data engineering and cutting-edge Generative AI.

What you’ll do

Deliver end-to-end AI use cases, including data pipelines, feature sets, models, and intelligent agents.

Build and operate Databricks lakehouse pipelines (batch and streaming) with integrated data quality checks.

Engineer advanced AI solutions, focusing on RAG (Retrieval-Augmented Generation), tool-using agents, and prompt strategies.

Enable business teams by creating reusable components, templates, and best practices for AI development.

Ensure operational excellence, maintaining reliability, cost control, and compliance with AI governance standards.

Develop custom models and prompts tailored to specific engineering and business challenges.

Collaborate across the organization to translate complex requirements into scalable, production-ready AI products.

What we’re looking for

Academic Foundation: Bachelor’s or Master’s degree in Computer Science, Data Science, or a related field.

Technical Proficiency: Strong hands‑on experience with Python and SQL for both data engineering and machine learning.

Databricks Expertise: Solid understanding of the Databricks ecosystem (Spark, Delta Lake, and Workflows).

Project Portfolio: A demonstratable portfolio of projects (academic, internship, or professional) showcasing your ability to build and deploy data/AI solutions.

Proactive Learner: A team-first mindset with a drive to stay ahead of rapidly evolving AI trends.

Tooling (must understand and use in practice): Databricks (Spark/SQL), Azure Cloud, Python, Delta Lake, and Git.

Nice to have

Azure AI Stack: Experience with Azure OpenAI and Azure Machine Learning services.

LLM Toolkits: Familiarity with frameworks like LangChain or Semantic Kernel, and an understanding of LLMOps.

DevOps/IaC: Experience with GitHub Actions and Terraform.

ML Frameworks: Experience with PyTorch, TensorFlow, or scikit‑learn.

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