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PhD Position: Riemannian Geometry in Reinforcement Learning – AI4I

Karlstad University

Torino

In loco

EUR 50.000 - 70.000

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Descrizione del lavoro

An Italian research institute is seeking a PhD candidate for a position in Riemannian Geometry in Reinforcement Learning. This fully funded role requires a Master’s degree and a strong background in machine learning and robotics. Responsibilities include exploring non-Euclidean geometries and developing policy learning methods. The position offers access to high-performance computing and opportunities for international collaboration.

Servizi

Access to high-performance computing resources
Opportunities for international collaboration
Dynamic research environment
Financial support for conferences

Mansioni

  • Explore the application of Riemannian geometries in RL algorithms.
  • Develop policy learning methods based on Riemannian metrics.
  • Investigate the control of physical systems like robots.

Conoscenze

Excellent Master’s degree in relevant fields
Strong background in machine learning and robotics
Good programming skills in Python
Fluent in spoken and written English
Team player and able to work autonomously
Experience with scientific writing

Formazione

Master's degree in computer science, physics, mathematics, electrical or mechatronics engineering
Descrizione del lavoro
PhD Position:iemannian Geometry in Reinforcement Learning – AI4I

Deadline
December 17th 2025 at 12 (noon – CET)

Curriculum
Hostile and Unstructured Environments (CODE 11660), Topic number 1

Hosting Institution
AI4I – The Italian Institute of Artificial Intelligence

Funding Scheme
This doctorate grant is fully funded by The Italian institute of Artificial Intelligence (AI4I) in collaboration withUniversità degli Studi di Genova

Position Description

The Italian Institute of Artificial Intelligence (AI4I), in collaboration with Università degli Studi di Genova, invites applications for a PhD position in Riemannian Geometry in Reinforcement Learning as part of the PhD Programme in Hostile and Unstructured Environments.

Reinforcement learning (RL) methods have been applied in a broad range of application domains, and represent one of the most successful learning paradigms for fine-tuning modern foundational models. However, most of RL methods work under the assumption that the states, actions and policy belong to Euclidean spaces. This PhD thesis is aimed at exploring how non-Euclidean geometries can be leveraged into the representation of states and actions in RL algorithms, and how such geometries impact the policy learning formulation. The first objective is to relax the Euclidean assumption on the formulation of a general RL problem via a Riemannian perspective. Later, the thesis will explore how methods like policy gradient need to be reformulated accordingly, and which advantages and challenges this new perspective brings in. Moreover, from a top-down approach, the next objective will be to leverage the Riemannian geometry of the Wasserstein space to understand, analyze and formulation policy learning methods based on Riemannian gradient flows and Wasserstein metrics. The thesis will explore applications of the developed methods in the control of physical systems such as robots or quadrotors, as well as the fine-tuning of foundational models, among others.

Requirements

Must have skills:

  • Excellent Master’s degree in computer science, physics, mathematics, electrical or mechatronics engineering, or a related field
  • Strong background in machine learning and robotics
  • Good programming skills in Python
  • Fluent in spoken and written English
  • A team player, but also can work autonomously
  • Experience with scientific writing

Good to have skills:

  • Background on (applied) differential geometry
  • Publication of peer-reviewed research papers

References

3. G. Tennenholtz and S. Mannor, “Uncertainty Estimation Using Riemannian Model Dynamics for Offline Reinforcement Learning”, NeurIPS, 2022.

Number of Positions Available

1

Application Documents

  • One-page cover letter including a short (two-paragraph) research proposal related to the PhD topic and aligned with your professional interests.
  • Bachelor’s and Master’s diplomas with transcripts and grades.

Main Research Site

AI4I –The Italian Institute of Artificial Intelligence for Industry
Corso Castelfidardo 22, 10129 Torino, Italy

What We Offer

  • Access to high-performance computing resources and advanced research infrastructure.
  • Opportunities for international collaboration and contributions to high-impact publications.
  • A dynamic and interdisciplinary research environment.
  • Financial support for attending international conference and Winter/Summer schools.

Start Date

1st March 2026

How to Apply

Applications for this position are managed by Università degli Studi di Genova.
Please apply via the university’s official PhD admissions portal:

AI4I – The Italian Research Institute for Artificial Intelligence

AI4I has been founded to perform transformative, application-oriented research in Artificial Intelligence.

AI4I is set to engage and empower gifted, entrepreneurial, young researchers who commit to producing an impact at the intersection of science, innovation, and industrial transformation.

Highly competitive pay, bonus incentives, access to dedicated high-performance computing, state-of-the-art laboratories, industrial collaborations, and an ecosystem tailored to support the initiation and growth of startups stand out as some of the distinctive features of AI4I, bringing together people in a dynamic international environment.

AI4I is an Institute that aims to enhance scientific research, technological transfer, and, more generally, the innovation capacity of the Country, promoting its positive impact on industry, services, and public administration. To this end, the Institute contributes to creating a research and innovation infrastructure that employs artificial intelligence methods, with particular reference to manufacturing processes, within the framework of the Industry 4.0 process and its entire value chain. The Institute establishes relationships with similar entities and organizations in Italy and abroad, including Competence Centers and European Digital Innovation Hubs (EDIHs), so that the center may become an attractive place for researchers, companies, and start-ups.

Job details

Title

PhD Position: Riemannian Geometry in Reinforcement Learning – AI4I

2025-12-17 12:00 (Europe/Rome)
2025-12-17 12:00 (CET)

AI4I has been founded by the Italian Government to perform transformative application-oriented research in Artificial Intelligence.

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