Blip

Data Engineer Revenue Operations

Blip

Madrid, SpainPosted May 14, 2026

Job description

We are looking for a Mid-Level Data Engineer to join our Revenue Operations team, responsible for building, scaling, and maintaining data pipelines that support strategic revenue decisions.

This role plays a key part in connecting data across Marketing, Sales, Customer Success, and Finance, ensuring high data quality, reliability, and availability.

The position requires on-site presence in Madrid, with close collaboration across cross-functional teams in a fast-paced and constantly evolving environment.

Responsibilities

1. Data Engineering (Core)

  • Design, build, and maintain scalable and reliable data pipelines (ETL/ELT).
  • Develop and optimize analytical data models (bronze, silver, and gold layers).
  • Ensure data quality, governance, and consistency.
  • Monitor pipelines, proactively identify bottlenecks, and resolve failures.
  • Work with large volumes of structured and semi-structured data.

2. Revenue Operations

  • Integrate data from multiple sources, including:

  • CRM systems (e.g., HubSpot)

  • Marketing platforms

  • Financial and billing systems (SAP)

  • Product data sources

  • Build datasets to support analysis of:

  • Sales funnel and pipeline

  • Revenue forecasting

  • Recurring revenue (MRR, ARR)

  • Churn, retention, and expansion

  • Performance metrics for SDRs, AEs, and CSMs

  • Support the development of strategic KPIs and metrics for leadership and C-level stakeholders.

  • Partner closely with data analysts, RevOps, and business teams.

3. Technology & Tools

  • Use Databricks for data processing, transformation, and orchestration.

  • Work extensively with advanced SQL and Python.

  • Leverage the Google ecosystem, including:

  • BigQuery

  • Google Cloud Storage

  • Google Sheets (automation and integrations)

  • Enable BI tools and dashboards (e.g., Looker, Power BI, Tableau).

4. Collaboration & Environment

  • Collaborate closely with business teams, translating requirements into technical solutions.
  • Participate actively in agile ceremonies (planning, daily stand-ups, reviews).
  • Thrive in a dynamic, high-growth, and fast-changing environment.
  • Continuously propose improvements in architecture, processes, and performance.

** Requirements**

  • Proven experience as a Mid-Level Data Engineer.

  • Strong expertise in SQL (data modeling and performance optimization).

  • Solid experience with Python for data engineering.

  • Hands-on experience with Databricks.

  • Experience with Google Cloud Platform (BigQuery, GCS).

  • Previous experience in Revenue Operations, Sales, or Finance.

  • Knowledge of SaaS metrics (MRR, ARR, LTV, CAC, churn).

  • Strong understanding of:

  • ETL / ELT processes

  • Data Warehousing and Data Lakes

  • Dimensional data modeling

  • Experience with version control systems (Git).

Nice to Have

  • Experience with BI tools.
  • International work experience.
  • Fluence in Spanish.
  • Advanced English it's good.
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