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Data Engineer

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Summary

Join a newly formed AI function at a global supply, shipping and trading business in Singapore to build a greenfield, governed cloud data platform. Day to day you design ETL/ELT pipelines, scalable data models and data governance on Azure (Data Factory, Synapse, Data Lake, Fabric), using SQL and Python/PySpark to enable analytics and future AI use cases.

Company Description

Our client is a globalbusiness operating across supply, shipping, trading and distribution. With a highly international footprint and complex operational data environment, the business is now investing in a major data and AI transformation programme.

This is an opportunity to join at the beginning of a greenfield build, helping create the governed data foundations that will enable enterprise-wide analytics, business intelligence and future AI use cases. The role sits within a newly formed AI function and will work closely with senior stakeholders across commercial, operations, finance and technology.

For someone who wants more than a standard data engineering role, this is a chance to become one of the first hands-on builders of a modern data platform in a global, asset-heavy industry.

Responsibilities

  • Build and maintain data ingestion pipelines from operational, transactional, business and third-party data sources into a central cloud data platform.
  • Design and develop reliable ETL/ELT pipelines across raw, cleansed and curated data layers.
  • Create scalable data models to support reporting, analytics, semantic layers and future AI-enabled data access.
  • Work closely with business teams to understand source systems, define key data entities, and establish trusted business metrics.
  • Support the development of a governed, enterprise-wide data foundation covering data quality, access control, lineage, cataloguing and documentation.
  • Apply best practices around data classification, role-based access, and row/column-level security.
  • Monitor pipeline performance, data quality, reliability and cloud cost on an ongoing basis.
  • Support early AI and analytics initiatives, including document intelligence, knowledge retrieval, and governed query access.
  • Help shape engineering standards, development practices and platform structure as the data function scales.

Requirements

  • 5+ years' experience in data engineering or equivalent hands-on experience building and operating production data pipelines.
  • Advanced SQL skills, with strong experience working with complex operational or transactional datasets.
  • Hands-on experience with Azure data services, ideally Azure Data Factory, Azure Synapse, Azure Data Lake, or Microsoft Fabric.
  • Experience building ETL/ELT pipelines from real-world source systems into a cloud data platform or data lakehouse.
  • Working proficiency in Python, with exposure to Spark or PySpark for larger-scale transformations.
  • Good understanding of dimensional modelling, star schema design, semantic layers, or medallion architecture.
  • Familiarity with Git, version control, CI/CD practices, and engineering standards for data pipelines.
  • Comfortable working in a greenfield environment where processes, standards and platform design are still being built.
  • Strong ownership mindset, with the ability to proactively monitor, troubleshoot and improve data pipelines.
  • Ability to work directly with business stakeholders and translate commercial or operational requirements into practical data solutions.
  • Experience in energy, commodities, shipping, logistics, supply chain, trading, or financial services would be advantageous.
  • Exposure to Microsoft Purview, Power BI, data governance, data catalogues, API-led data access, or AI-enabled analytics would be a plus.

Skills

See also

Data Engineering jobs by country — openings, pay and top skills →

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