Chercheur(e) Doctorant(e) en IA et Optimisation Inspirée par la Quantique pour les Systèmes Énergétiques Durables
Aalto University
Présentation de l'entreprise
Université Aalto
SiègeEspoo, Finlande
Fondée2010
TailleEnviron 4 500 employés (source : aalto.fi).
Ce qu'ils font
L'Université Aalto est une université publique de recherche située à Espoo, en Finlande, reconnue pour ses programmes académiques significatifs et ses initiatives de recherche axées sur les technologies d'énergie renouvelable. Bien qu'elle ne soit pas une entité commerciale, elle sert de pipeline de talents essentiel pour le secteur des énergies renouvelables, offrant divers rôles académiques, de recherche et de collaboration avec l'industrie. Le domaine technologique central de l'université englobe la production d'énergie durable, le stockage et la conversion d'énergie, ainsi que les carburants avancés, entre autres domaines, faisant d'elle un leader dans la recherche énergétique (source : aalto.fi).
Projets et antécédents
L'Université Aalto a été impliquée dans plusieurs projets notables qui mettent en évidence son engagement à faire progresser les technologies d'énergie renouvelable. Une telle initiative est le projet Marine Zéro Émission, qui vise à réduire les émissions de gaz à effet de serre maritimes de 60 % d'ici 2030 grâce à l'utilisation de carburants à base d'hydrogène, Aalto contribuant à des recherches critiques sur la combustion (source : wartsila.com). De plus, le projet HENNES, financé par Business Finland, se concentre sur le développement de technologies de combustion d'hydrogène pour des applications sans émissions (source : wartsila.com). La collaboration d'Aalto avec Helen Ltd, qui a débuté en 2024, utilise l'IA pour optimiser les systèmes énergétiques intelligents, illustrant l'approche innovante de l'université face aux défis énergétiques (source : helen.fi).
Développements récents
En décembre 2025, l'Université Aalto a renouvelé son partenariat de recherche et développement de cinq ans avec Wärtsilä, élargissant la collaboration pour inclure des efforts internationaux en IA, apprentissage automatique et matériaux avancés (source : wartsila.com). L'université a également obtenu 25,67 millions d'euros du Conseil de recherche de Finlande pour des recherches axées sur les technologies de transition verte, y compris la microélectronique durable et les transformations urbaines (source : sciencebusiness.net). De plus, Aalto a réalisé des progrès significatifs en matière de durabilité, atteignant 100 % d'électricité renouvelable depuis 2016 et éliminant le charbon dans le chauffage urbain avant la date prévue (source : aalto.fi).
Travailler là-bas
À l'Université Aalto, les rôles couvrent une variété de disciplines, y compris des postes de recherche en conversion d'énergie et modélisation de systèmes, ainsi que des opportunités de doctorat et de doctorat industriel financées par des partenaires industriels comme Wärtsilä. L'université favorise une culture collaborative qui met l'accent sur les partenariats entre l'industrie et le monde académique, avec des recrutements principalement effectués sur le campus d'Otaniemi à Espoo (source : aalto.fi). Les employés bénéficient d'un environnement de travail favorable qui comprend des horaires flexibles, des services de santé au travail et des congés annuels généreux, reflétant l'engagement de l'université envers le bien-être de ses employés (source : aalto.fi).
Dernière mise à jour le févr. 24, 2026 | Signaler un problème
Job Description
Aalto University is where science and art meet technology and business. We shape a sustainable future by making research breakthroughs in and across our disciplines, sparking the game changers of tomorrow and creating novel solutions to major global challenges. Our community is made up of 16 000 students and 5 200 employees, including 446 professors. Our campus is in Espoo, Greater Helsinki, Finland.
Diversity is part of who we are, and we actively work to ensure our community's diversity and inclusiveness. This is why we warmly encourage qualified candidates from all backgrounds to join our community.
We are now looking for a fully funded Doctoral Researcher to work on AI-based and quantum-inspired methods for sustainable energy systems. The position is funded by the Research Council of Finland (RCF) and is part of the project "Smart, Economic, and Sustainable Energy Management of Green Maritime Industry via AI Approaches" (SiGMA). The position is hosted by the Multi-energy System Planning and Operation Research Group at Aalto University School of Electrical Engineering.
The research will focus on the modelling, optimization, and operation of AI+Energy systems, integrated energy systems, green hydrogen, ship and port energy systems, and energy-intensive infrastructures such as data centres. The research group is led by Assistant Professor Zhengmao Li and focuses on multi-energy system optimization, AI-driven energy management, green hydrogen integration, and sustainable maritime energy systems. The position will also benefit from the group's ongoing research activities and collaborations, and will provide opportunities to work with academic and industrial partners in Finland and internationally.
Your role and goals
In this position, your doctoral research will focus on developing AI-based and quantum-inspired methods for the modelling, optimization, and operation of sustainable energy systems. The main application area will be green maritime energy systems, especially ship and port energy systems with integrated electricity, heat, hydrogen, storage, and flexible loads.
Your main tasks will include:
- Developing mathematical, data-driven, and AI-based models for sustainable multi-energy systems.
- Designing optimization and decision-making methods for system planning, scheduling, and operation.
- Exploring quantum-inspired optimization methods for selected energy-system problems.
- Applying the developed methods to case studies related to ship and port energy systems, green hydrogen, smart grids, or other energy-intensive infrastructures.
- Implementing algorithms and simulation models using Python, MATLAB, Julia, or other suitable tools.
- Analysing simulation and project data, and validating the developed methods through practical case studies.
- Preparing scientific publications for international journals and conferences.
Your network and team
In this position, you will join the Multi-energy System Planning and Operation Research Group at Aalto University School of Electrical Engineering. Your main supervisor will be Assistant Professor Zhengmao Li.
You will work closely with:
- Your supervisor and research group, including doctoral researchers, master's students and research assistants working on energy-system modelling, optimization and AI-based methods.
- Academic collaborators at Aalto University and partner universities in Finland and abroad.
- Industrial and societal stakeholders, especially in areas related to energy systems, hydrogen, maritime operations, smart infrastructure and data-driven decision-making.
- The wider Aalto community, including researchers and students from electrical engineering, automation, computer science and energy-related fields.
The working style of the group is collaborative and research-oriented. You will be encouraged to develop independent scientific ideas, discuss your work regularly with the team, contribute to joint publications and participate in project meetings, seminars and stakeholder activities.
Your experience and ambitions
Candidates should hold a Master's degree in electrical engineering, energy systems, automation, or a related field. A strong background in energy-system modelling, mathematical optimization, machine learning, reinforcement learning, or data-driven decision-making is appreciated.
Experience with programming and computational modelling is important for the position. Familiarity with Python, MATLAB, Julia, or similar tools is considered valuable. Previous experience in one or more of the following areas is an advantage: power and energy systems, integrated multi-energy systems, hydrogen systems, maritime or port energy systems, data centre energy management, smart grids, stochastic optimization, deep learning, safe reinforcement learning, or quantum-inspired optimization.
A strong command of English, good communication skills, and the ability to work both independently and as part of a research team are essential. The candidate is expected to be motivated to publish high-quality scientific papers, participate in research projects, collaborate with academic and industrial partners, and develop into an independent researcher during the doctoral studies.
The following skills are considered assets, but they can also be developed during the doctoral studies:
- Experience with energy-system simulation or optimization tools.
- Experience with machine learning, reinforcement learning, or other AI-based methods.
- Knowledge of power systems, hydrogen systems, or multi-energy system operation.
- Familiarity with uncertainty modelling, stochastic programming, robust optimization, or real-time decision-making.
- Interest in quantum computing or quantum-inspired optimization methods.
- Good programming skills in Python, MATLAB, Julia, or similar languages.
- Experience in writing scientific papers or participating in research projects.
What we offer
We offer a fully funded doctoral researcher position in a timely and growing research area at the intersection of artificial intelligence, quantum-inspired methods, and sustainable energy systems. You will have the opportunity to work on research questions that are both scientifically challenging and closely connected to the clean energy transition, including integrated energy systems, green hydrogen, ship and port energy systems, smart grids, and energy-intensive infrastructures such as data centres.
Aalto University offers an international, multidisciplinary, and supportive research environment. Our work is guided by responsibility, courage, and collaboration, and we value openness, equality, inclusion, and well-being. You will receive supervision, feedback, and support from your supervisor and research group, while also being encouraged to develop independence as a researcher.
The position also offers good opportunities for professional development, including doctoral courses, research training, teaching experience, conference participation, international collaboration, and skill development in scientific writing, project work, and academic communication. The primary workplace is the Otaniemi campus in Espoo, Finland, which offers a vibrant academic environment, modern research facilities, good public transport connections, and access to the wider innovation ecosystem around Aalto University.
Join us!
To apply, please share your CV and motivation letter with us through our recruitment site ("Apply now!") latest at 23.59 pm (EET) 30th August 2026. We will go through applications, and we may invite suitable candidates to interview already during the application period. The position will be filled as soon as a suitable candidate has been found.
Please note: Aalto University's employees should apply for the position via our internal HR system Workday (Internal Jobs) by using their existing Workday user account (not via the external webpage for open positions). If you are a student or visitor at Aalto University, please apply with your personal email address (not aalto.fi) via Aalto University open positions.
For more information about the role, please contact Zhengmao Li +358 50 441 3955, or [email protected]. For questions related to the application process, please contact HR advisor [email protected].
We aim to have a transparent and equal recruitment process, so feel free to ask us for feedback.
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Postuler maintenant
Offre d’emploi expirée ?Dites à Aalto University que vous avez trouvé cet emploi sur Rejobs. Cela nous aide à grandir et à attirer plus de talents dans les énergies renouvelables !
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À propos du rôle
19 août 2026
19 août 2026
Poste doctoral
Sur site
École
Hydrogène, Réseaux intelligents
- Espoo, Finlande
Master's degree required, experience in energy-system modelling and programming preferred.
UTC+03:00