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University of Cambridge

PhD studentship: Discovery of rational therapeutic biomarkers in breast cancer by systems pathology and deep learning

Closes:

570

Supervisor: Dr Hamid Raza Ali

Department/location: Cancer Research UK Cambridge Institute

Deadline for application: 16th October 2026

Course start date: 1st October 2027

Overview

The Ali Lab wishes to recruit a student to work on the project entitled: "Discovery of rational therapeutic biomarkers in breast cancer by systems pathology and deep learning".

For further information about the research group, including their most recent publications, please visit their website at www.ali-lab.co.uk/.

Project details

The therapeutic landscape for breast cancer patients is rapidly evolving with novel therapies regularly receiving regulatory approval. Yet directing these treatments to patients likely to benefit while sparing those unlikely to respond from their toxicities remains a major challenge. Many modern therapies, like immunotherapy and ADCs, rely on tissue architecture to be effective. Intercellular relationships in breast cancer tissues also determine cellular activation states and expression profiles, rendering some cells susceptible and others resistant to new treatments.

The aim of this project is to use modern multiomic spatial methods (in which our group has extensive expertise1¿4) together with deep learning (for efficient representation and cross-modal learning) to discover the potential therapeutic landscape for novel therapies in breast cancer, and to propose rational multidimensional biomarkers for combinatorial therapy. We are generating multimodal spatial datasets in cohorts of breast cancer patients (the largest of their kind; making extensive use of imaging mass cytometry and spatial transcriptomics) that span observational studies and clinical trials. We must precisely define the landscape of novel target expression, quantify its heterogeneity, and the contribution of tissue architecture as a determinant of expression profiles. This project will involve large scale data processing and analysis in a setting with ample expertise and infrastructure. This is a rare opportunity to develop expertise in quantitative pathology in the burgeoning field of spatial cancer biology.

Ours is a diverse and collaborative group that spans clinicians, pathologists, computational and cancer biologists. You will receive extensive training in cancer pathology, highly multiplexed imaging, and predictive modelling.

References/further reading

  • Wang, X. Q. et al. Spatial predictors of immunotherapy response in triple-negative breast cancer. Nature 621, 868-876 (2023).
  • Danenberg, E. et al. Breast tumor microenvironment structures are associated with genomic features and clinical outcome. Nat Genet 54, 660-669 (2022).
  • Ali, H. R. et al. Imaging mass cytometry and multiplatform genomics define the phenogenomic landscape of breast cancer. Nat Cancer 1, 163-175 (2020).
  • Gupta, P. et al. Single-cell spatial atlas of the aging human breast. Nat Aging https://doi.org/10.1038/s43587-026-01104-3 (2026) doi:10.1038/s43587-026-01104-3.

Preferred skills/knowledge

Applications are invited from graduates in quantitative disciplines such as computer science, AI, and mathematics, but we also encourage applications from biologists and clinicians already experienced in computational methods.

How to apply

Please apply via the University Applicant Portal. For further information about the course and to access the Applicant Portal, visit: https://www.postgraduate.study.cam.ac.uk/courses/directory/cvcrpdmsc.

You should select to commence study in October 2027.

References

We would appreciate it if you could ask your referees to submit their references as soon as possible upon request, despite the longer University deadline for references. They will receive a request once you have completed the References section of your application.

Download further information

Job details

Title
PhD studentship: Discovery of rational therapeutic biomarkers in breast cancer by systems pathology and deep learning
Employer
University of Cambridge
Location
Cambridge, United Kingdom
Published
Sep 9, 2026
Closes:
Oct 16, 2026
Job type
Full time, Student / Phd Jobs
Field
Postgrad Student Opportunity

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Frequently Asked Questions

🎓What are the eligibility requirements for this PhD studentship?

Applicants should be graduates in quantitative disciplines such as computer science, artificial intelligence, and mathematics. The group also welcomes biologists and clinicians with proven experience in computational methods. Experience with deep learning, multiomic spatial methods, or cancer pathology is highly desirable. For help presenting your academic background, see How to Write a Winning Academic CV.

🔬What will the PhD project investigate?

The project will apply multiomic spatial methods and deep learning to discover rational therapeutic biomarkers in breast cancer. You will analyse imaging mass cytometry and spatial transcriptomics data from large patient cohorts and clinical trials, quantifying target expression heterogeneity and the role of tissue architecture in treatment response. Read about related AI-driven cancer pathology discovery and breast cancer biomarker research.

📝How do I apply and what is the application deadline?

Apply via the University Applicant Portal. The application deadline is 16th October 2026, and the course start date is 1st October 2027. You should select October 2027 as your commencement date and ask your referees to submit references promptly. For more academic opportunities, browse Higher Ed Jobs or Research Jobs.

🧑‍🔬What training and skills will I gain during the PhD?

You will receive extensive training in cancer pathology, highly multiplexed imaging, and predictive modelling within a collaborative team of clinicians, pathologists, and computational biologists. The project builds expertise in quantitative pathology and spatial cancer biology. For post-PhD career planning, see Postdoctoral Success: How to Thrive in Your Research Role.

💰Is there a stipend or funding for this PhD studentship?

The job posting does not list a specific salary or stipend amount. Most UK PhD studentships include a tax-free stipend, tuition fees, and research costs, but exact funding terms should be verified in the Further Particulars document. For general funding resources, visit Scholarships.

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