Computational Antibody Engineer

Computational Antibody Engineer

Full-Time 49500 - 60500 £ / year (est.) No working from home possible
Barrington James Limited

At a Glance

  • Tasks: Develop and apply machine learning models for therapeutic antibody discovery and optimisation.
  • Company: Join a cutting-edge biotech firm focused on innovative R&D.
  • Benefits: Competitive salary, flexible working options, and opportunities for professional growth.
  • Other info: Collaborative environment with a focus on scientific integrity and innovation.
  • Why this job: Make a real impact in healthcare by transforming data into life-saving therapies.
  • Qualifications: PhD or equivalent experience in machine learning, computational biology, or related fields.

The predicted salary is between 49500 - 60500 £ per year.

An exciting opportunity is available for a Computational Antibody Engineer to apply machine learning, computational biology and protein engineering approaches to the discovery, engineering and optimisation of therapeutic antibodies.

Working as part of a multidisciplinary R&D team, you will develop and apply computational models to biological datasets, generate actionable insights and work closely with experimental scientists to translate computational predictions into testable designs.

This is an excellent opportunity for a scientist with a strong background in machine learning, computational biology, bioinformatics or protein engineering who is passionate about applying computational approaches to real-world therapeutic discovery.

Key Responsibilities

  • Develop, train, validate and evaluate machine-learning models using internal and external biological datasets.
  • Apply machine learning, statistical modelling and computational biology to antibody discovery, engineering, optimisation and candidate selection.
  • Analyse antibody sequence, structure, binding, functional and developability data to support improvements in affinity, specificity, stability, solubility and manufacturability.
  • Work closely with experimental scientists to define scientific questions, develop validation strategies and incorporate experimental results into iterative design cycles.
  • Contribute to computationally guided library design, lead optimisation and project decision-making.
  • Apply and evaluate emerging approaches in artificial intelligence, protein language models, generative protein design and structure prediction.
  • Communicate model outputs, uncertainty, limitations and scientific recommendations clearly to multidisciplinary project teams.
  • Maintain high standards of data quality, reproducibility, documentation and scientific integrity.

About You

  • A Ph D, or equivalent research experience, in machine learning, computational biology, bioinformatics, protein engineering, biophysics or a related discipline.
  • Postdoctoral or industry experience applying computational or machine-learning approaches to biological research.
  • Demonstrable experience developing, validating and interpreting machine-learning models.
  • A strong understanding of protein or antibody sequence, structure, function and developability.
  • Experience preparing, analysing and quality-checking biological datasets.
  • Strong Python programming skills and experience with relevant machine-learning and scientific-computing tools.
  • Excellent analytical and problem-solving skills, with the ability to translate complex data into clear, evidence-based recommendations.
  • Strong communication skills and experience working effectively within multidisciplinary scientific teams.

Desirable Experience

Experience in one or more of the following would be advantageous

  • Therapeutic antibody discovery, engineering or developability assessment.
  • Antibody-antigen interactions, display technologies, high-throughput screening or sequencing datasets.
  • Protein language models, generative modelling, structure prediction, sequence design or molecular modelling.
  • Antibody or protein-design platforms such as Rosetta, Schrödinger or the Chemical Computing Group suite.
  • Integrating computational design into experimental design-build-test-learn cycles.
  • Cloud computing, version control and reproducible model-development workflows.
  • Experience within pharmaceutical or biotechnology R&D environments.
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Computational Antibody Engineer employer: Barrington James Limited

Join a well-established organisation that values its employees and fosters a supportive work culture. As an HR Associate, you will have the opportunity to be a trusted point of contact, ensuring compliance with employment legislation while contributing to the development of robust people processes. With a focus on employee growth and continuous improvement, this role offers a meaningful career path in a dynamic environment.

Barrington James Limited

Contact Details:

Barrington James Limited Recruitment Team

StudySmarter Expert Advice🤫

We think this is how you could land Computational Antibody Engineer

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We think you need these skills to ace Computational Antibody Engineer

Machine Learning
Computational Biology
Protein Engineering
Bioinformatics
Statistical Modelling
Data Analysis
Python Programming

Some tips for your application 🫡

Show Off Your Lab Skills:In the biotechnology field, it's super important to highlight your lab experience in your CV. Be sure to mention specific techniques or instruments you've mastered (think PCR, gel electrophoresis, etc.) and any relevant projects you've worked on. This will show Barrington James Limited that you have the hands-on skills they need.

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How to prepare for a job interview at Barrington James Limited

Brush Up on Lab Techniques

Since you're eyeing a full-time gig in biotechnology, make sure you're well-versed in the lab techniques relevant to the role. Be ready to talk about PCR, CRISPR, or any specific methods mentioned in the job description at Barrington James Limited. You might even be asked to demonstrate your understanding of these processes.

Know Your Bioinformatics Tools

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