The exponential growth of multi-omics data, driven by advances in genome sequencing and metabolomics, poses significant challenges in systematically linking bacterial genotypes to metabolic phenotypes. I am particularly interested in data-integrative modeling projects like Predicting Bacterial Nutrient Metabolism, which aim to apply Machine Learning and LLM-based embeddings to map genomic features to nutrient utilization, improving the scalability of functional inference and the precision of personalized dietary interventions.

Research interests

🖥 Artificial intelligence for healthcare 💻 Bioinformatics

Education&Experience

2025-2026

PhD Degree (Biomedical Data Science)

Nanyang Technological University

2025-2026

Master Degree (Biomedical Data Science)

Nanyang Technological University

2021-2025

Bachelor Degree (Biological Science)

Shandong University

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