kpler

Fuel Oils / Bunker Analyst Intern

🇸🇬 Singapore, Singapore, Singapore On-site Posted Jun 2, 2026
Workplace On-site
Language English
Posted June 2, 2026
Last verified June 2, 2026

Where this role is available

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2 locations
Singapore
  • Singapore, Singapore
  • Singapore
JobGrid context

Role summary by JobGrid

Fuel Oils / Bunker Analyst Intern at kpler is an on-site role in Singapore, Singapore. JobGrid presents the posting as a normalized data-analytics internship, keeps the source boundary separate from the employer description, and sends candidates to the original public application page with non-personal referral parameters.

  • JobGrid has the source marked as posted and last checked on 2026-06-02, so the listing is based on a recent crawl of the public posting.
  • The role is on-site in Singapore, Singapore, with no salary, employment type, seniority, or category provided in the structured payload.
  • The work described in the source centers on bunker tracking, data quality checks, backtesting, and pipeline improvement for additional bunkering centres.
  • The source content is in English, and JobGrid preserves the employer application path separately from the employer description.

Join the Liquids Data Operations team to help scale our bunker tracking product from existing established hubs to additional bunkering centres worldwide.


This is a hands-on data analytics internship with exposure to shipping/commodities domain logic, geospatial filtering, and operational automation.

Key Responsibilities

  • Increase Geographical Coverage: Expand the current bunker tracking model (python-based) to other hubs, including conducting exploratory work to fine-tune for each hub’s nuances
  • Perform Routine Backtesting: Validate modelled bunker activity by exporting analysis-ready CSVs and reconciling monthly estimates against official port statistics, industry publications, or other trusted external sources.
  • Investigate Data Quality Issues: Routinely analyze the bunker tracking data set to identify structural data quality issues and develop improvement solutions in the pipeline / post-processing to resolve them.
  • Improve Pipeline & Data Platform: Help mature how we develop, run and persist bunker pipelines so that expansion is maintainable and scalable.
  • Currently pursuing or recently completed a degree in Computer Science, Data Science, Engineering, Statistics, or a related quantitative field.

  • Practical experience with Python for data processing (coursework, personal projects, or prior internship acceptable).

  • Comfort working with SQL (queries, joins, basic schema concepts) and tabular data (CSV/Excel-style analysis).

  • Ability to work independently on defined tasks while asking targeted questions when domain or data ambiguity arises.

  • Exposure to pandas, SQLAlchemy, or similar data stack used in ETL pipelines.

  • Familiarity with Git, pull requests, and collaborative code review.

  • Interest in or prior exposure to shipping, energy commodities, maritime AIS, or geospatial data.

  • Experience with CLI tools, environment variables, and cloud/database connectivity (PostgreSQL preferred).

  • Basic understanding of automated workflows (e.g. GitHub Actions) or Google Sheets/API integrations.