Research Associate, Data Scientist, Research Scientist
Listed on 2026-05-02
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Research/Development
Data Scientist, Research Scientist, Artificial Intelligence
Grade UE07: £41,064 - £48,822 per annum
College of Science and Engineering / School of Informatics
Full-time: 35 hours per week
Fixed-term: for 24 months
The OpportunityWe invite applications for a Postdoctoral Research Associate in machine learning based in the School of Informatics, University of Edinburgh. The postholder will also be formally affiliated with the EPSRC-funded Hub in Generative AI and work with Drs Siddharth N. and Michael Gutmann as part of the Hub. This is an outstanding opportunity to conduct methodological research at the frontier of machine learning and to collaborate across a vibrant national network of leading universities and industry partners.
The scope of the project will be defined together with the candidate and tailored to their strengths and interests but will broadly focus on one or both of the following topics:
- Mutual information estimation and maximisation for continuous and discrete variables, with application to cross-modal data analysis or experimental design and active learning. This work stream will build on papers [1, 2].
- Probabilistic latent variable modelling with hierarchically structured continuous and discrete variables for more efficient and effective generative modelling [3,4] and uncertainty quantification, with application to diffusion models [5].
The overarching goal is to advance methodology and to explore their use in real-world problems in collaboration with Hub partners.
Policy-Based Experimental Design without Likelihoods, NeurIPS 2021 ((Use the "Apply for this Job" box below).)
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Improved Representation Learning with Explicit Structure, ICML 2025
The position includes funding for international travel, e.g., for attending conferences, visiting research collaborators, and disseminating research findings. The researcher will have access to the compute infrastructure available to the School of Informatics and the AI Hub.
We welcome both local (UK‑resident) and international applicants. We warmly welcome qualified candidates from all backgrounds to apply and particularly encourage applications from under‑represented groups in the field. We are strongly committed to offering everyone an inclusive and non‑discriminating working environment.
Your skills and attributes for successEssential
- PhD (or near completion) in Machine Learning, AI, Statistics, Applied Mathematics, or a related field.
- Research experience in at least one of: probabilistic machine learning, diffusion/flow‑based models.
- Proficiency in modern ML tool chains (e.g., PyTorch, JAX) and reproducible research practices.
- A track record of high‑quality publications, e.g. at ICML, NeurIPS, ICLR, AISTATS, ACL, EMNLP, CVPR, JMLR, Machine Learning, and computational statistics journals.
- Excellent communication skills and a collaborative mindset.
Desirable
- Research experience in mutual information estimation and/or experimental design.
- Research experience in energy‑based models and/or hierarchical generative models.
- Strong cross‑disciplinary experience and expertise.
- Strong software engineering practices (testing, benchmarking, packaging, CI).
This post is full‑time (35 hours per week); however, we are open to considering flexible working patterns. We are also open to considering requests for hybrid working (on a non‑contractual basis) that combines a mix of remote and regular on‑campus working.
Contact details for enquiriesFor Dr Siddharth N.: – Siddharth – Home
For Dr Michael Gutmann: – Michael U. Gutmann
How to applyPlease include the following documents in your application:
- CV, including publication lists and links to relevant software packages
- A 2‑3 page research statement (a) your relevant research experience and publications, (b) your proposed research and how it connects to the topics above. The page limit includes references and figures.
If shortlisted, you will be…
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