Data Analitics - Industrial Digital Platform

Verdalia Bioenergy

Madrid

Híbrido

EUR 50.000 - 70.000

Jornada completa

14 días+

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Ventajas ofrecidas por este puesto de trabajo

Strategic role with real impact
Dynamic and fast-growing environment
Opportunity to work on a modern data platform

Descripción de la vacante

Verdalia Bioenergy is looking for a Data Engineer in Madrid to build and scale data infrastructure that supports decision-making across various teams. This role entails hands-on responsibility for data quality and governance as a key contributor to the data architecture.

Applicants should have 6+ years of experience in data engineering with strong SQL skills, proficiency in Python, and capabilities in Azure and Databricks. The position offers a hybrid work model, emphasizing collaboration and innovation.

Formación

  • 6+ years of experience in data engineering.
  • Experience in industrial or operational environments.
  • Excellent communication skills across technical and non-technical teams.

Responsabilidades

  • Design, build, and maintain a scalable data infrastructure.
  • Define and enforce data validation standards.
  • Collaborate cross-functionally with engineers and analysts.

Conocimientos

Strong SQL skills
ETL/ELT experience
Proficiency in Python, Java, or Scala
Data modeling and warehousing knowledge
Experience with Azure and Databricks
Data governance experience
Familiarity with data quality tools

Educación

Degree in Computer Science, Engineering, or a related field

Herramientas

Spark
Hadoop
Docker
Kubernetes

Descripción del empleo

Our Industrial Digital Platform team is looking for a Data Engineer to build and scale the data backbone that powers decision-making across engineering, operations, and leadership.

We are developing a modern data platform focused on transforming industrial and operational data into a reliable, high-quality asset. This role sits at the intersection of industrial systems and cloud data technologies, with a strong emphasis on data quality, governance, and scalability.

This is a hands‑on role for someone who takes ownership, cares deeply about data integrity, and is comfortable working across the full data stack.

Conditions
  • Permanent contract
  • Hybrid model: 1 day of remote work per week
  • Working hours: 9:30 a.m. to 6:30 p.m. (Fridays until 2:30 p.m.)
Mission of the role

Design, build, and maintain a robust, scalable, and validation‑first data infrastructure that ensures high‑quality, reliable data across the industrial digital platform.

You will act as a key contributor to data architecture and governance, ensuring that data is accurate, accessible, and trusted across all business functions.

Key responsibilities
Data Quality & Governance
  • Define and enforce validation standards across all data systems
  • Ensure data accuracy, consistency, and integrity from ingestion to consumption
  • Design and maintain data contracts, lineage tracking, and cataloguing practices
  • Design, build, and maintain scalable data pipelines with validation embedded at every stage
ETL/ELT Development
  • Build and evolve ETL/ELT processes with automated quality checks
  • Ensure issues are detected and resolved before reaching downstream users
Cross‑functional collaboration
  • Translate complex requirements from engineers, analysts, and scientists into robust solutions
  • Work closely with multiple teams to deliver production‑grade data systems
  • Optimise database performance and storage architecture
  • Ensure continuous reliability and efficiency of data systems
  • Monitor pipeline health and proactively detect issues
  • Diagnose failures quickly and ensure continuous data availability
  • Stay up to date with data engineering trends and tools
  • Introduce improvements that add real value to the platform
Profile
  • 6+ years of experience in data engineering, ideally in industrial or operational environments
  • Strong SQL skills and hands‑on ETL/ELT experience with a focus on data quality
  • Proficiency in Python, Java, or Scala
  • Solid understanding of data modelling, data warehousing, and big data technologies (Spark, Hadoop)
  • Proven experience with Azure and Databricks
  • Experience in data governance (cataloguing, lineage, metadata, access control)
  • Familiarity with data quality tools (Great Expectations, dbt tests, Soda)
  • Degree in Computer Science, Engineering, or a related field
  • Strong problem‑solving skills and attention to detail
  • Excellent communication skills across technical and non‑technical teams
Nice to Have
  • Experience building and optimising data lakes and warehouses in Azure
  • Real‑time and streaming data processing (Event Hubs, Stream Analytics)
  • Experience with data mesh or data fabric architectures
  • Knowledge of regulatory frameworks (ISO, GDPR)
  • Experience with containerisation and orchestration (Docker, Kubernetes, ADF)
Languages
  • Spanish – Highly valued
  • Italian – Highly valued
What we offer
  • Strategic role with real impact on data‑driven decision making
  • Dynamic and fast‑growing environment
  • Opportunity to build and scale a modern industrial data platform
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