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Kogan.com

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Data Engineer

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Summary

Data Engineer at Kogan.com designing and running the ETL/ELT data and ML pipelines that power decisions across Marketing, Purchasing, Logistics and Finance. Core stack is SQL, Python, orchestration tools like Airflow/dbt/AWS Glue, cloud data platforms (GCP preferred), BigQuery/Snowflake, plus MLOps and ML model work.

Kogan.com is a pioneer of Australian eCommerce, and the software we build is used by millions of customers every day. You'll join a fast-moving engineering team with real ownership, shipping to production daily and using AI as part of how we work.

As a Data Engineer you'll design and run the data and ML pipelines that let teams across Marketing, Purchasing, Logistics and Finance make confident, data-driven decisions.

What you'll do:

  • Scalable Pipeline Development: Design and maintain ETL/ELT pipelines capable of handling 10M+ daily events and large-scale data transfers across our platforms.
  • Data Modeling: Develop and optimize data models in environments like BigQuery or Snowflake to ensure high performance for both analytics and ML training sets with optimal cost
  • Support ML Workflows: Build the underlying features and data inputs required for Machine Learning models
  • Develop and refine ML models for practical business use cases, such as customer sentiment, churn prediction or demand forecasting
  • MLOps Integration: Establish and maintain MLOps pipelines to help automate the deployment and monitoring of models in production.
  • System Integration: Work with internal APIs and third-party tools to ingest data efficiently while maintaining strict data integrity.
  • Governance & Quality: Implement best practices for data quality, security, and documentation to ensure our data remains a "source of truth."
  • Development according to software engineering best practices (Git, CI/CD, trunk based development, tests)
  • AI Collaboration: Contribute to experiments with AI and LLMs to assess how they can be practically applied to solve business problems.

What you'll need:

  • Strong SQL Foundations: Solid experience writing and optimizing SQL for commercial-scale products (e.g., handling millions of rows and complex joins efficiently).
  • Pipeline Orchestration: Proven experience using tools like Airflow, dbt, or AWS Glue to manage and monitor production-grade data workflows.
  • Python Proficiency: Strong Python skills for data transformation, scripting and interacting with various data sources.
  • ML Engineering Exposure: Practical experience building the data infrastructure that supports machine learning, including data preprocessing and model deployment pipelines. Experience with machine learning models development
  • Cloud Experience: Hands-on experience with cloud data platforms, with a strong preference for GCP.
  • Software Best Practices: Familiarity with Git, CI/CD, and basic containerization (Docker) to ensure code quality and deployment reliability.
  • Problem-Solving Mindset: A practical approach to engineering that balances the need for speed with long-term system stability.

Why Kogan.com?

  • Work on machine learning , data and AI products that are used by millions of customers and have a measurable impact on the business.
  • Own problems end to end, from experimentation and modelling through to deployment and optimisation in production.
  • Join a highly capable engineering team that values autonomy, fast execution and practical innovation.
  • Help shape the future of AI, machine learning and eCommerce at one of Australia's leading technology businesses.
  • Receive a $1,000 annual learning budget to invest in your growth and development.
  • Enjoy a range of benefits including a complimentary Kogan First membership, team discounts, health and wellbeing initiatives, Lunch & Learns, hackathons, referral bonuses, volunteering opportunities and regular team events.

Skills

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See also

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