Data Engineer

What we do matters
Azendian Solutions, an AI, Data Science and Operations Technology company, develops solutions for energy and resource optimisation to achieve a smarterand more sustainable Built Environment by reducing carbon footprint, enhancing resource productivity and operations as well as lowering costs. Our AI-driven solution is game changing in its approach, leveraging on Machine Learning, Data Science, Cloud Computing with Operations Technology engineering systems.

What you will do

  • Build and maintain data pipelines to process data from building systems and IoT devices
  • Work with real-world engineering data (e.g., equipment performance, energy usage)
  • Support development of analytics and AI models for:
  • Anomaly detection
  • Predictive maintenance
  • Performance optimization
  • Assist in setting up systems and environments for Databases (SQL), basic server setup (Windows/Linux) and running applications using Docker or microservices
  • Use modern tools (including AI-assisted tools) to improve productivity and workflows
  • Collaborate with engineering and product teams to deliver real-world solutions

Core Responsibilities

· Data Engineering & Pipeline Development

· Data Integration (BMS / IoT Systems)

· Analytics & AI Enablement

· Data Quality & Performance Optimization

· Collaboration & Delivery

Job Requirements

· Diploma or equivalent in Electrical/Electronic Engineering or Computing Engineering, Information Technology or related field.

· Minimum 1 year of relevant experience in data engineering, software engineering, or engineering systems.

· Strong foundation in Python and SQL (MSSQLand/or PostgreSQL).

· Familiarity with data processing, ETL pipelines, or data management concepts.

· Experience or interest in working with real-world data (e.g., IoT, engineering systems, or operational data).

· Knowledge in BMS communication protocols (BACnet and Modbus) is preferred but not required.

· Basic familiarity with system setup (e.g databases, Windows/Linux environment, or Docker) is an advantage.

· Experience with workflow orchestration tools (e.g., Airflow, Prefect) is a plus.

· Exposure to data analytics or machine learning concepts is a plus.

· Familiarity with AI-assisted tools or automation tools is an advantage.

· Strong logical and analytical skills.

· Willingness to learn and work across data systems, and AI domains.

· Able to work comfortably and independently in a fast-paced environment.

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