Senior Bioinformatician

Senior Bioinformatician

Full-Time 36000 - 60000 £ / year (est.) No home office possible
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At a Glance

  • Tasks: Lead data analysis and interpret large single-cell genomics data for groundbreaking research.
  • Company: Join a collaborative team at the forefront of life-changing science and health solutions.
  • Benefits: Enjoy opportunities for personal development, peer-reviewed publications, and a supportive work environment.
  • Why this job: Be part of innovative projects that tackle global health challenges and advance your skills in AI and machine learning.
  • Qualifications: MSc or PhD in a quantitative field; experience in bioinformatics and programming (Python/R) required.
  • Other info: Work within an interdisciplinary team and contribute to impactful scientific publications.

The predicted salary is between 36000 - 60000 £ per year.

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Do you want to help us improve human health and understand life on Earth? Make your mark by shaping the future to enable or deliver life-changing science to solve some of humanity’s greatest challenges.

About the Role

We are seeking a Senior Bioinformatician to support single-cell and spatial transcriptomic studies needed to train large-scale AI-based foundation models as part of a collaborative project with Open targets ( This role will aid multiple computational projects across the lab, focusing on curating large-scale cohorts of training data to train foundation models. The position involves working within an interdisciplinary team of life scientists, computer scientists, and ML scientists.

The post holder will maintain a key understanding of the research portfolio within the team and contribute to the development of innovative and creative data analysis strategies. They will also contribute to the development of the training pipeline and machine learning and artificial intelligence models. Additionally, they will have the opportunity to develop their skills in machine learning and AI models. Finally, they will be responsible for exploring opportunities to transition project-based analysis work into established scalable pipelines and advocate for open and reproducible science.

You will join an interdisciplinary team of life scientists, computer scientists, and mathematicians. We all learn from each other and work together in supporting Wellcome\’s mission to address worldwide health challenges. This is an exciting opportunity to work in single-cell and spatial genomics to understand how the immune system develops and maintains health.

Key responsibilities of the role:

  • Help generate and lead data analysis, and interpret large single-cell genomics data relating to the Human Cell Atlas research generated by the group, shared by collaborators and publicly available, including multi-omic and spatial datasets (e.g. scRNAseq, scATAC, 10x Genomics Visium and Xenium).
  • Implement innovative and creative data analysis strategies to aid in the pursuit of biological insights and clinical translation using single-cell research.
  • Work in a team to answer research questions formulated together with the members of Haniffa Lab, and with team members across the wider Institute as appropriate. Contribute to problem-solving discussions to solve complicated or multifaceted problems and generate novel ideas and new approaches.
  • Organise and keep track of developed codes and generated data within the group.
  • Feedback results to project leaders when required to achieve deadlines.
  • To prepare high-quality data reports and manuscripts to communicate results, including through publication and presentations at scientific meetings.
  • To take a full part in the general duties of the team, and to pass on skills and knowledge to other team members and visitors. To take part in wider Sanger Institute activities as appropriate.

About You

You are a bioinformatician with experience analysing genomic data and interpreting biological data. You are seeking a senior role that includes elements of statistical analysis, data analysis and pipeline engineering. You are a highly detail-oriented problem solver and are eager to learn and develop in the areas in which you have less experience. Teamwork and collaboration are essential aspects of this role, and you will be enthusiastic about creating effective and productive working relationships with collaborators both within and outside the organisation.

You will be supported in your personal and professional development and have the opportunity to lead peer-reviewed publications on genetics and genomics approaches.

  • MSC or PhD in a relevant quantitative discipline (e.g. Computational Biology, Genetics, Bioinformatics, Physics, Engineering or Applied Statistics/Mathematics); or equivalent working experience in Bioinformatics or a related discipline
  • Experience programming in high-level scripting languages (Preferably Python and/or R), and the Unix Shell
  • Understanding and some experience in the fields of genomics, data processing and high-throughput data analysis
  • Experience in single-cell genomics data analysis and integration, e.g. scRNAseq, scATAC (desirable)
  • Experience developing statistical/machine-learning methods for the analysis of large-scale biological datasets, particularly Gaussian processes, neural networks and deep generative models (desirable)
  • Extensive experience in a research environment with an established track record of productivity through publications, or writing reports in the industry
  • Enthusiastic, proactive attitude and desire to learn
  • Strong communication skills to allow efficient interactions with team members
  • Commitment, problem-solving skills and attention to detail
  • Ability to organise own workload and manage competing priorities
  • Ability to summarise complex information and present to a wide variety of audiences in a concise and logical manner
  • Demonstrates inclusivity and respect for all

Relevant publication of the groups:

  • Lotfollahi, M., Naghipourfar, M., Luecken, M. D., Khajavi, M., Büttner, M., Wagenstetter, M., Avsec, Ž., Gayoso, A., Yosef, N., Interlandi, M. & Others. Mapping single-cell data to reference atlases by transfer learning. Nature Biotechnology 1–10 .
  • Lotfollahi, M., Wolf, F. A. & Theis, F. J. scGen predicts single-cell perturbation responses. Nature Methods 16, 715–721 .
  • Lotfollahi, M., Rybakov, S., Hrovatin, K., Hediyeh-Zadeh, S., Talavera-López, C., Misharin, A. V. & Theis, F. J. Biologically informed deep learning to query gene programs in single cell atlases. Nature Cell Biology .

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Senior Bioinformatician employer: Wellcome Sanger Institute

Join a pioneering team at the Sanger Institute, where your work as a Senior Bioinformatician will directly contribute to groundbreaking research aimed at improving human health. With a strong emphasis on collaboration and innovation, you'll have access to exceptional professional development opportunities, including leading peer-reviewed publications and engaging in interdisciplinary projects. Our inclusive work culture fosters creativity and teamwork, making it an ideal environment for those passionate about advancing science and tackling global health challenges.
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Contact Detail:

Wellcome Sanger Institute Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Senior Bioinformatician

✨Tip Number 1

Familiarise yourself with the latest advancements in single-cell and spatial transcriptomics. Understanding the current trends and technologies in this field will not only enhance your knowledge but also demonstrate your passion and commitment during interviews.

✨Tip Number 2

Engage with the research community by attending relevant conferences or webinars. Networking with professionals in bioinformatics and genomics can provide valuable insights and potentially lead to referrals or recommendations for the position.

✨Tip Number 3

Showcase your collaborative skills by participating in interdisciplinary projects or open-source initiatives. Highlighting your ability to work effectively within diverse teams will resonate well with our emphasis on teamwork at StudySmarter.

✨Tip Number 4

Prepare to discuss specific examples of how you've implemented innovative data analysis strategies in past roles. Being able to articulate your problem-solving approach and the impact of your contributions will set you apart from other candidates.

We think you need these skills to ace Senior Bioinformatician

Bioinformatics
Genomic Data Analysis
Statistical Analysis
Data Processing
High-Throughput Data Analysis
Single-Cell Genomics
scRNAseq
scATAC
Machine Learning
Deep Learning
Python Programming
R Programming
Unix Shell Scripting
Data Integration
Problem-Solving Skills
Attention to Detail
Communication Skills
Team Collaboration
Project Management
Publication Writing

Some tips for your application 🫡

Tailor Your CV: Make sure your CV highlights relevant experience in bioinformatics, particularly in genomic data analysis and machine learning. Use specific examples from your past work that align with the responsibilities outlined in the job description.

Craft a Compelling Cover Letter: In your cover letter, express your enthusiasm for the role and the mission of the organisation. Discuss how your skills and experiences make you a perfect fit for the Senior Bioinformatician position, and mention any specific projects or achievements that demonstrate your capabilities.

Showcase Your Technical Skills: Clearly outline your programming skills, especially in Python and R, as well as your experience with Unix Shell. Provide examples of how you've used these skills in previous roles to solve complex problems or contribute to significant projects.

Highlight Collaborative Experience: Since teamwork is essential for this role, include examples of successful collaborations in your application. Describe how you have worked with interdisciplinary teams and contributed to problem-solving discussions, showcasing your ability to communicate effectively with diverse team members.

How to prepare for a job interview at Wellcome Sanger Institute

✨Showcase Your Technical Skills

Be prepared to discuss your experience with programming languages like Python and R, as well as your familiarity with Unix Shell. Highlight specific projects where you've applied these skills, especially in single-cell genomics data analysis.

✨Demonstrate Problem-Solving Abilities

Expect questions that assess your problem-solving skills. Prepare examples of complex problems you've tackled in previous roles, particularly those involving large-scale biological datasets or innovative data analysis strategies.

✨Emphasise Team Collaboration

Since teamwork is crucial for this role, be ready to share experiences where you've successfully collaborated with interdisciplinary teams. Discuss how you’ve contributed to group discussions and problem-solving sessions.

✨Prepare for Questions on Research Impact

Understand the significance of the research conducted by the team and be ready to discuss how your work can contribute to addressing global health challenges. Familiarise yourself with recent publications from the group to demonstrate your interest and knowledge.

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