Data Engineer

London Liverpool Street, EC2M 4TP

Key Responsibilities

Data Engineering & Pipelines

  • Build and enhance data pipelines and automation workflows on Azure for large-scale data ingestion and processing
  • Maintain and optimise existing toolkits, databases, dashboards, and API-based solutions
  • Develop end-to-end automated data solutions across commodities (Gas/LNG, Power, Weather)
  • Design and implement web scraping pipelines (e.g. US LNG data)

Analytics & Real-Time Systems

  • Support real-time and batch analytics use cases in a dynamic trading environment
  • Enable and support analytics dashboards and GUI tools with reliable backend infrastructure
  • Develop real-time flow tracking solutions at critical market points

Data Modelling & Architecture

  • Design and manage Snowflake data models, ensuring performance and scalability
  • Integrate external data sources including ENTSOE, EPEX, KPLER, MetDesk, WoodMac, and others
  • Collaborate with analytics teams to structure data for models and advanced analytics use cases
  • Build and maintain data platforms supporting ML models such as demand forecasting

Key Deliverables

  • LNG Sendout Optimisation Model
  • Ship Tracking & Flow Monitoring Tools
  • Prompt Price & Forward Curve Bootstrapping
  • Web scraping pipelines for US LNG and other market data sources
  • Real-time flow tracking infrastructure at critical market points
  • Data platforms supporting ML and demand forecasting models

Required Skills & Experience

Technical

  • Strong proficiency in Python for data engineering and pipeline development
  • Hands-on experience with Azure data services (Data Factory, Databricks, Blob Storage, etc.)
  • Experience designing and optimising Snowflake data models
  • Proven track record building and maintaining data pipelines at scale
  • Experience integrating third-party market data APIs and external data feeds
  • Familiarity with SQL and data warehousing concepts

Domain

  • Experience or strong interest in energy, commodities, or financial markets data
  • Understanding of real-time and batch data processing patterns in a trading context
  • Familiarity with market data providers such as ENTSOE, EPEX, KPLER, or similar

Nice to Have

  • Experience with web scraping frameworks (e.g. Scrapy, BeautifulSoup, Playwright)
  • Knowledge of LNG, Gas, or Power market fundamentals
  • Experience supporting ML model pipelines or demand forecasting workflows
  • Exposure to GUI/dashboard tools such as Grafana, Power BI, or Streamlit
  • Knowledge of ship tracking data or AIS feeds


 
 

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