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You will be updated with latest job alerts via emailEstablished in 2010 the Energy Research Institute @ NTU () is a pan-university research institute that focuses on systems-level research for tropical megacities. It performs translational research that covers the energy value chain from generation to innovative end-use solutions motivated by industrialisation and deployment. has multiple Interdisciplinary Research Programmes which focus on translational Research Development & Deployment which focus on specific area of the energy value chain and a number of Living labs and Testbeds which facilitate large scale technology deployment enabling validation and demonstration of real-world applications.
Key Responsibilities:
Formulate and develop machine learning and mathematical optimization solutions for electric vehicle (EV) fleet charging scheduling problems with considerations of various smart power grids battery degradation and infrastructure level constraints.
Conduct and coordinate research within NTU and collaborating partners in line with its research strategy.
Publish research outcomes in journals of international standing; Attend and present research findings and papers at academic meetings.
Collaborate closely with our partner ITB to apply solutions in a local context using data available with ITB.
Assist ITB in the development of their digital twin platform by integrating the solutions developed in NTU into their platform.
Job Requirements:
Masters in Computer Science Electrical Engineering or related field (for Research Associate)
PhD in smart grids energy management or mathematical optimizations (for Research Fellow). The candidates who have submitted the thesis are also encouraged to apply.
Background in the application of machine learning and mathematical optimization techniques including reinforcement learning
Proven publication track record in similar domains for Research Fellow position
Proficiency in written and spoken English for research work.
Interpersonal skill (e.g. Ability to work independently / develop solutions under strict timelines meticulous
and eye for details / excellent organizational / time management skills)
Desirable: Background in the modeling of energy management systems (e.g. buildings batteries smart grids vehicle-to-grid etc.).
We regret to inform that only shortlisted candidates will be notified.
Hiring Institution: NTURequired Experience:
IC
Full-Time