Biomedical data science workspace with microscopy, assay, and modelling visuals

Quantitative support across biomedical research and R&D

EigenQuant Solutions

Led by Min Sun, Founder and Principal Consultant, EigenQuant Solutions helps research and R&D teams turn complex biomedical questions into quantitative evidence, from study design and data analysis to modelling, review, and the next scientific move.

Min Sun

Founder and Principal Consultant

Chartered Statistician (CStat), awarded by the Royal Statistical Society, UK

Almost a decade of experience at Roche (Switzerland) and GSK (UK) R&D headquarters

Research lifecycle

Use quantitative evidence to decide what to study, trust, and advance.

Biomedical research teams often have more data than clarity. EigenQuant Solutions supports the full quantitative path: designing studies, analysing complex data, building fit-for-purpose models, stress-testing assumptions, and turning results into focused recommendations for the next experiment, analysis, or programme decision.

How EigenQuant helps

Consulting services across the biomedical research lifecycle.

Experimental and study design

Study design, endpoint strategy, sample size and power, randomisation and sample allocation, and decision criteria before data are generated.

Statistical analysis and modelling

Frequentist and Bayesian analysis, regression, mixed models, longitudinal analysis, survival analysis, hypothesis testing, uncertainty, and sensitivity analysis.

Translational and PK/PD evidence

Quantitative support and modeling for exposure-response, dose rationale, biomarker-response relationships, and proof-of-mechanism questions.

Complex biomedical data analytics

Analysis of high-dimensional biomarkers, omics such as RNA-seq and proteomics, imaging, flow cytometry, cytokines, and HLA types.

Fit-for-purpose ML/AI and optimisation

Prediction, classification, feature selection, pattern recognition including subgroup and responder identification, computer vision, optimisation, validation, and overfitting checks.

Research review and communication

Independent review, publication-ready analysis, reproducible workflows, reviewer responses, second opinions, and decision summaries.

Why EigenQuant

Integrated quantitative judgment across complex scientific questions.

EigenQuant Solutions starts from the scientific decision, then formulates the problem mathematically before choosing the quantitative approach that fits the question, the data, and the evidence required. The goal is not to default to the most complex method, but to select the method that matches the scientific question and the strength of the data.

Right approach, right question

That may mean statistical modelling, machine learning, optimisation, computer vision methods for image analysis, graph-theoretic reasoning, or mechanistic reasoning using dynamical systems, including differential-equation models and stochastic processes where appropriate.

Integrated research lifecycle view

Across Roche Pharma Research and Early Development (pRED) and GSK R&D headquarters, Min worked across connected scientific questions where target biology, biomarkers, exposure, imaging, endpoints, and uncertainty all influence what comes next.

Accredition by the Royal Statistical Society

Min Sun is a Chartered Statistician (CStat), awarded by the Royal Statistical Society, UK, combining professional statistical standing with models and summaries that scientific teams can understand, scrutinise, and use.

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Contact

Ready to discuss a research or modelling question?

[email protected]