Primary Work Address: Dept of Molecular Biology, Princeton, NJ,
08544
Current HHMI Employees, click here to apply via your Workday account.
We have an opportunity to be a Part-time Bioinformatics Specialist to join Dr. Ai Ing Lim at Princeton University. The Lim Laboratory at Princeton University studies the immune system during reproduction and development. Our research combines experimental models, human studies, and high-dimensional genomic approaches to understand how pregnancy and lactation alter immune and tissue states and how maternal exposures influence offspring long-term health and disease. This will be a part-time 20 hour per week position, in person at Princeton.
Our work combines immunology, stem cell biology, host–microbiome interactions, and reproductive biology, integrating mechanistic experimental studies with insights from human populations. We use single-cell and spatial genomics, epigenomic profiling, microbiome analysis, and large-scale human datasets to uncover biological principles in reproduction and development, with the ultimate goal of improving women’s and children’s health.
Dr. Lim is an HHMI Freeman Hrabowski Scholar. The Lim Lab is in the Department of Molecular Biology at Princeton University and offers a highly collaborative environment with access to state-of-the-art genomics, imaging, computational, and experimental resources. Learn more about the lab at https://www.limmunity.com/
About the Role
The Lim Laboratory is seeking a motivated and collaborative Bioinformatics Specialist to contribute to the computational aspects of our research program. The position will have two major areas of focus:
Large-scale human data analysis to investigate relationships between reproductive history and disease outcomes.
Computational analysis of experimental datasets generated within the laboratory, including single-cell RNA-seq, single-cell ATAC-seq, spatial transcriptomics, epigenomic datasets, and microbiome sequencing.
The successful candidate will work closely with the PI and experimental scientists in the laboratory to develop analytical strategies, interpret complex datasets, and connect computational findings with biological questions. We are particularly interested in someone who enjoys thinking collaboratively about biology and using computational approaches to uncover new biological insights.
What we provide:
Current HHMI Employees, click here to apply via your Workday account.
We have an opportunity to be a Part-time Bioinformatics Specialist to join Dr. Ai Ing Lim at Princeton University. The Lim Laboratory at Princeton University studies the immune system during reproduction and development. Our research combines experimental models, human studies, and high-dimensional genomic approaches to understand how pregnancy and lactation alter immune and tissue states and how maternal exposures influence offspring long-term health and disease. This will be a part-time 20 hour per week position, in person at Princeton.
Our work combines immunology, stem cell biology, host–microbiome interactions, and reproductive biology, integrating mechanistic experimental studies with insights from human populations. We use single-cell and spatial genomics, epigenomic profiling, microbiome analysis, and large-scale human datasets to uncover biological principles in reproduction and development, with the ultimate goal of improving women’s and children’s health.
Dr. Lim is an HHMI Freeman Hrabowski Scholar. The Lim Lab is in the Department of Molecular Biology at Princeton University and offers a highly collaborative environment with access to state-of-the-art genomics, imaging, computational, and experimental resources. Learn more about the lab at https://www.limmunity.com/
About the Role
The Lim Laboratory is seeking a motivated and collaborative Bioinformatics Specialist to contribute to the computational aspects of our research program. The position will have two major areas of focus:
Large-scale human data analysis to investigate relationships between reproductive history and disease outcomes.
Computational analysis of experimental datasets generated within the laboratory, including single-cell RNA-seq, single-cell ATAC-seq, spatial transcriptomics, epigenomic datasets, and microbiome sequencing.
The successful candidate will work closely with the PI and experimental scientists in the laboratory to develop analytical strategies, interpret complex datasets, and connect computational findings with biological questions. We are particularly interested in someone who enjoys thinking collaboratively about biology and using computational approaches to uncover new biological insights.
What we provide:
- The opportunity to work at the interface of computational
biology, immunology, reproductive biology, and human health.
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