Data Engineer (Digital Shelf Team)

Posted 9 Days Ago
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Hiring Remotely in Bangkok, Phra Nakhon, Bangkok, THA
Remote
Mid level
eCommerce • Retail
The Role
Supports the full data lifecycle, including ingestion, validation, transformation, reporting, and downstream delivery. Maintains data pipelines and operational reporting workflows, implements quality checks and anomaly detection, and contributes to scheduled ETL pipelines using orchestration tools. Uses Python and SQL to manage multi-source data, collaborates with technical and non-technical stakeholders, documents processes, and improves recurring data operations.
Summary Generated by Built In

We are seeking an experienced Data Engineer to join our team and support both data analysis and data operations for the Digital shelf Team!

In this role, you will work across the full data lifecycle - from raw data ingestion and validation to transformation, reporting, and downstream delivery. Beyond generating insights, this position plays an important role in maintaining data reliability, improving data quality, and automating operational workflows that support daily client deliverables.

Responsibilities

  • Support and maintain existing data pipelines and reporting workflows used for daily operations.
  • Implement and monitor data quality checks, validations, and anomaly detection.
  • Contribute to building and maintaining scheduled ETL / data processing pipelines to support analytics and client databases (e.g. via orchestration tools, Airflow or similar).
  • Use Python and SQL to clean, transform, and manage data from multiple sources.
  • Collaborate with cross-functional teams to understand data requirements and support new analytical or operational initiatives.
  • Contribute to documentation, standardization, and continuous improvement of data processes and workflows.

Requirements
  • 2-4 years of hands-on experience in data engineering, data processing, or a related technical role.
  • Bachelor’s degree or equivalent experience in a quantitative or technical field (Statistics, Mathematics, Computer Science, Engineering, or similar).
  • Strong proficiency in Python and SQL for data processing and analysis.
  • Solid understanding of data pipelines, ETL concepts, and data quality management.
  • Familiarity with cloud data storage or modern data platforms (e.g., AWS S3 or similar).
  • Strong analytical thinking with high attention to data accuracy, consistency, and structural integrity.
  • Ability to work cross-functionally and adapt to different task types and projects.
  • Proactive, reliable, and able to take full ownership of recurring data processes and operations.
  • Demonstrated ability to work cross-functionally with non-technical stakeholders and cross-domain teams.
  • Flexibility to adapt quickly to different task types, evolving requirements, and varied projects.

Skills Required

  • 2-4 years of hands-on experience in data engineering, data processing, or a related technical role
  • Bachelor's degree or equivalent experience in a quantitative or technical field such as Statistics, Mathematics, Computer Science, or Engineering
  • Strong proficiency in Python and SQL for data processing and analysis
  • Solid understanding of data pipelines, ETL concepts, and data quality management
  • Familiarity with cloud data storage or modern data platforms such as AWS S3
  • Strong analytical thinking and high attention to data accuracy, consistency, and structural integrity
  • Ability to work cross-functionally and adapt to different task types and projects
  • Proactive, reliable, and able to take ownership of recurring data processes and operations
  • Demonstrated ability to work cross-functionally with non-technical stakeholders and cross-domain teams
  • Flexibility to adapt quickly to evolving requirements and varied projects
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The Company
27 Employees
Year Founded: 2022

What We Do

We offer granular market data and insights for e-commerce in Southeast Asia, helping brands and retail companies drive profitable growth for their online businesses. Our Cube Subscription plans allow brands, retailers, consulting firms and investors to access the most accurate, granular and dynamic e-commerce intelligence in the market. Current clients include leading consumer brands, retailers and private equity firms. Cube Asia was previously known as Chalawan (chalawan.asia).

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