Logo for AB InBev

Mid-Level Data Engineer

Role overview

Qualifications

  • Bachelor's degree in Computer Science, Computer Engineering, Information Systems, Data Science, Software Engineering, or related fields.
  • Up to 2 years of experience in Data Engineering, Software Engineering, Data Analytics, or related areas.
  • Knowledge of SQL and Python.
  • Basic to intermediate English.

Responsibilities

  • Support the development and maintenance of data pipelines, ingestion processes, and data transformations.
  • Create and maintain SQL queries, Python scripts, and Spark-based workloads used for data processing and analytics.
  • Assist in troubleshooting pipeline failures, data quality issues, and operational incidents.
  • Work with senior engineers to implement schema mappings, transformation logic, and data validation rules.

About the company

AB InBev logo

AB InBev

Wine, Beer & Spirits

As a company, we dream big to create a future with more cheers. We are always looking to serve up new ways to meet life’s moments, move our industry forward and make a meaningful impact in the world. We are committed to building great brands that stand the test of time and to brewing the best beers using the finest ingredients. Our diverse portfolio of well over 500 beer brands includes global brands Budweiser®, Corona® and Stella Artois®; multi-country brands Beck’s®, Hoegaarden®, Leffe® and Michelob ULTRA®; and local champions such as Aguila®, Antarctica®, Bud Light®, Brahma®, Cass®, Castle®, Castle Lite®, Cristal®, Harbin®, Jupiler®, Modelo Especial®, Quilmes®, Victoria®, Sedrin®, and Skol®. Our brewing heritage dates back more than 600 years, spanning continents and generations. From our European roots at the Den Hoorn brewery in Leuven, Belgium. To the pioneering spirit of the Anheuser & Co brewery in St. Louis, US. To the creation of the Castle Brewery in South Africa during the Johannesburg gold rush. To Bohemia, the first brewery in Brazil. Geographically diversified with a balanced exposure to developed and developing markets, we leverage the collective strengths of approximately 167,000 colleagues based in nearly 50 countries worldwide.

Company details

IndustryWine, Beer & Spirits
Company size10001

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Job description

About us

AB InBev is the leading global brewer and one of the world’s top 5 consumer product companies. With over 500 beer brands, we’re number one or two in many of the world’s top beer markets, including North America, Latin America, Europe, Asia, and Africa.

About AB InBev Growth Group

Created in 2022, the Growth Group unifies our business-to-business (B2B), direct-to-consumer (DTC), Sales & Distribution, and Marketing teams. By bringing together global tech and commercial functions, the Growth Group allows us to fully leverage data and drive digital transformation and organic growth for AB InBev around the world.
In addition to supporting well-known global beer brands like Corona, Budweiser and Michelob Ultra, the Growth Group is home to a robust suite of digital products, including our B2B digital commerce platform BEES, on-demand delivery services Ze Delivery and TaDa Delivery, and table-top beer keg PerfectDraft.
We are an exceptional team, focused on understanding and supporting consumer and customer needs, harnessing new technology, and scaling growth opportunities.

What You Do

  • Support the development and maintenance of data pipelines, ingestion processes, and data transformations.
  • Create and maintain SQL queries, Python scripts, and Spark-based workloads used for data processing and analytics.
  • Assist in troubleshooting pipeline failures, data quality issues, and operational incidents.
  • Work with senior engineers to implement schema mappings, transformation logic, and data validation rules.
  • Ensure datasets meet expected schemas, data contracts, and quality standards.
  • Support metadata management, dataset documentation, and lineage activities.
  • Assist in maintaining data classification information according to company standards.
  • Help automate repetitive operational and data management tasks to improve efficiency and reliability.
  • Contribute to monitoring, alerting, and operational support for data pipelines and workflows.
  • Participate in testing activities, including unit tests, transformation validation, and data quality checks.
  • Follow established engineering standards, coding practices, and team development patterns.
  • Learn and apply security, privacy, and compliance requirements when handling sensitive or regulated data.
  • Collaborate with Data Governance, Security, and Compliance teams when required.
  • Contribute to continuous improvement initiatives focused on data trust, reliability, and operational excellence.


Requirements and Qualifications

  • Bachelor's degree in Computer Science, Computer Engineering, Information Systems, Data Science, Software Engineering, or related fields.
  • Basic to intermediate English.
  • Up to 2 years of experience in Data Engineering, Software Engineering, Data Analytics, or related areas.
  • Knowledge of SQL and Python.
  • Understanding of ETL/ELT concepts and data transformation processes.
  • Familiarity with relational databases and data warehousing concepts.
  • Basic knowledge of Spark, Databricks, or distributed data processing frameworks.
  • Familiarity with Git and version control workflows.
  • Basic understanding of cloud platforms such as AWS, Azure, or Google Cloud.
  • Knowledge of automation concepts and scripting for operational efficiency.
  • Basic understanding of data quality concepts and validation practices.
  • Familiarity with data governance principles, including metadata, ownership, stewardship, and documentation.
  • Basic knowledge of data classification concepts (Public, Internal, Confidential, Restricted).
  • Understanding of data lineage and traceability concepts.
  • Awareness of security best practices, including access management, secrets management, and least-privilege principles.
  • Strong analytical, problem-solving, and communication skills.
  • Willingness to learn new technologies and collaborate across teams.


Security, Compliance & Governance

  • Follow company standards for handling sensitive and regulated data.
  • Apply data classification requirements when creating or maintaining datasets and pipelines.
  • Use approved authentication, authorization, and secrets management mechanisms.
  • Avoid exposing sensitive information through logs, exports, testing data, or documentation.
  • Support auditability by maintaining documentation, metadata, and lineage information.
  • Escalate security, privacy, or compliance concerns when requirements are unclear.
  • Follow established governance processes and contribute to improving data trust across the organization.


How You Work

  • Demonstrate curiosity and a continuous learning mindset.
  • Write clean, readable, and maintainable code.
  • Follow coding standards, testing practices, and development workflows.
  • Communicate progress, blockers, and technical questions clearly.
  • Participate in code reviews and knowledge-sharing activities.
  • Take ownership of assigned tasks while escalating risks or uncertainties appropriately.
  • Contribute positively to team collaboration and a culture of continuous improvement.


Nice to Have

  • Experience with Databricks, dbt, or similar technologies.
  • Familiarity with CI/CD tools such as GitHub Actions, Azure DevOps
  • Familiarity with APIs, JSON, event-driven architectures, or messaging systems.
  • Exposure to vulnerability scanning, secret scanning, or secure development practices.
  • Understanding of privacy regulations such as LGPD, GDPR, or similar frameworks.


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Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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