Applied AI Scientist (Pharma Partnerships) in London
Applied AI Scientist (Pharma Partnerships)

Applied AI Scientist (Pharma Partnerships) in London

London Full-Time 60000 - 80000 ÂŁ / year (est.) No home office possible
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At a Glance

  • Tasks: Lead pharmaceutical partnerships and bridge AI models with R&D pipelines.
  • Company: Fast-growing AI start-up in biomedicine, backed by top venture capitalists.
  • Benefits: Competitive salary, equity, flexible remote work, and growth opportunities.
  • Other info: Collaborative culture focused on innovation and inclusivity.
  • Why this job: Shape the future of biology and AI while making a real impact.
  • Qualifications: PhD in Computational Biology or related field; strong ML and business development skills.

The predicted salary is between 60000 - 80000 ÂŁ per year.

Bioptimus is building the first universal AI foundation model for biology to fuel breakthrough discoveries and accelerate innovation in biomedicine. With more than $75M in funding, Bioptimus is a fast‑growing start‑up headquartered in Paris, incorporated in October 2023. Backed by leading international venture capitalists, our world‑class team of scientists and engineers is redefining the frontiers of AI and life sciences.

We are looking for a scientifically credentialed strategist to lead the post‑sales journey for our pharmaceutical partners. In this role, you will be the bridge between our cutting‑edge foundational models and the R&D pipelines of the world’s leading biopharma companies. You will use your deep expertise in machine learning and computational biology to build credibility with stakeholders, identify new opportunities for model application within their pipelines, and translate customer feedback into our product roadmap.

As our Applied AI Scientist (Pharma Partnerships) you are the primary architect of value for our most critical pharmaceutical partnerships. You will operate at the intersection of computational biology, ML and commercial scale across two strategic domains:

  • Partnership Value Realisation & Growth
  • Post‑Signature Leadership: Orchestrate the partner journey immediately following contract execution. You will act as the Project Manager for the deployment, ensuring seamless onboarding and integration of our foundational models.
  • Scientific & technical thought‑leadership: Consult with client R&D teams (ranging from bench scientists and data science teams to Heads of R&D) to diagnose their specific therapeutic challenges. Identify key use cases where our AI foundation models can unlock high value to our customers' research and therapeutic priorities.
  • Commercial Adoption & Growth: Proactively identify opportunities to expand the scope of the partnership. Leverage your understanding of the client’s pipeline to suggest new use cases, therapeutic areas, or departments where our technology can drive value.
  • Product Intelligence & Roadmap Influence
  • Voice of the Customer: Synthesize technical feedback and performance metrics from the field. Translate complex biopharma user requirements into actionable technical specifications for our internal Research and Product teams. Identify high value opportunities to enrich our model capabilities and biology applications offering.
  • Gap Analysis: Collaborate with our machine learning engineers to identify data modalities or functional gaps in our current offering, directly influencing future product iterations.

The successful candidate will have a ‘team‑first’ attitude; be independent, curious, and detail‑oriented; thrive in a dynamic, fast‑paced environment; and be fun to work with. We value individuals who bring deep domain expertise in computational biology, ML and pharmaceutical R&D alongside strong hands‑on business development skills.

Educational Background: PhD in Computational Biology, Machine Learning, Bioinformatics, Genomics, or a related field is required.

Domain Expertise: Deep understanding of the biopharma R&D value chain (target discovery to clinical trials). You understand the specific pain points of drug developers and are able to translate ambiguous biopharma use cases into rigorous ML applications.

Technical Fluency: Deep experience in biological data modalities, notably multi-omics (single-cell, transcriptomics, proteomics) and histopathology slides. Extensive knowledge in modern ML architectures and paradigms like Transformers (ViT), GNNs, foundation models with embedding‑based prediction heads (e.g., ABMIL), interpretability methods, and model evaluation & validation principles. Proven experience in designing end-to-end ML solutions for complex biological problems, including problem framing, data strategy and model design & evaluation. Strong fluency in Python and deep learning frameworks (PyTorch, JAX).

Stakeholder Management: Proven experience navigating complex, matrixed organizations (Big Pharma experience is a plus). You can present to a VP of R&D in the morning and troubleshoot with a bioinformatician in the afternoon.

Consulting Mindset: You are not just a support agent; you are a trusted advisor. You have experience in roles such as Field Application Scientist (FAS), Solution Architecture, or Scientific Consulting.

Feedback Synthesis: Ability to distill complex client complaints or requests into clear, prioritized product requirements.

How to stand out: Experience in a startup or innovative environment, showing adaptability and proactiveness. A strong existing network within Global Top 20 Pharma R&D. Experience specifically with “Foundation Models” or Generative AI in a biological context. Track record of high‑impact publications (Nature, Cell, NeurIPS).

To be considered, please submit your CV in English. We believe in a transparent and collaborative interview process. We need to find a fit for both you and the company. Here is what you can expect after submitting your application:

  • Screening: Once you have applied, the hiring team will review your application. If your experience and skills align with the role, you will be invited to a 30‑minute introductory call with the Hiring Manager to discuss your background, motivations, and the position in more detail.
  • Interviews: Following a successful screening, you will be invited to a series of interviews:
  • Case Study (60 min): You will prepare a mock kick‑off document for a client engagement with us to evaluate the model on their desired use‑cases, including suggesting interesting use cases for our model and outlining the project plan. We want to see how well you understand the potential use cases for foundation models in the clinical stage of pharma development cycles, and how you would manage a key strategic partner through the deployment and delivery process.
  • Scientific Deep Dive Presentation (30 min): You will briefly present a piece of scientific work to a small panel of our researchers and engineers, led by a senior member of our technical team, and answer Q&S after (10‑15 min presentation, 15‑20 min Q&A). The content is up to you: it can be your own past research, a relevant paper in the field, or extra points if it’s a specific Bio‑AI use case you’ve worked on with a biopharma. The goal is to assess your technical fluency, your ability to facilitate scientific debate, and how you communicate complex concepts to experts.
  • Executive Interview (30 min): A comprehensive discussion with members of our Senior Leadership. This session moves beyond technical competency to focus on long‑term vision, values, and mutual potential. This is an opportunity for you to get to know the company better as well.
  • Offer: Following the completion of all interviews, our hiring team will make a final decision and will be in touch to share the outcome. Please note that an offer is contingent upon the successful completion of a reference check.
  • Onboarding: We are happy to have you joining the team! Once you have accepted and signed your offer, we will be in touch to begin the process of onboarding you.

Why this is a unique opportunity: A collaborative and mission‑driven work environment. Competitive salary and equity package. Flexible work arrangements, including remote options. Opportunities for professional growth and leadership development. Shape the future of biology and AI by contributing to groundbreaking work. We believe that the unique contributions of all Bioptimists create our success. To ensure that our culture continues to incorporate everyone’s perspectives and experience, we never discriminate based on race, religion, national origin, gender identity or expression, sexual orientation, age, or marital, or disability status. Decisions related to hiring are made fairly, and we provide equal employment opportunities to all qualified candidates. We take responsibility for always striving to create an inclusive environment that makes every employee and candidate feel welcome.

Applied AI Scientist (Pharma Partnerships) in London employer: Bioptimus

Bioptimus is an exceptional employer, offering a dynamic and collaborative work environment where innovation thrives. With competitive salaries, equity packages, and flexible work arrangements, employees are empowered to grow professionally while contributing to groundbreaking advancements in biomedicine. Located in the vibrant city of Paris, our team enjoys a culture that values diversity and inclusivity, ensuring every voice is heard and respected.
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Contact Detail:

Bioptimus Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Applied AI Scientist (Pharma Partnerships) in London

✨Tip Number 1

Network like a pro! Reach out to your connections in the biopharma and AI space. Attend industry events, webinars, or even local meetups. The more people you know, the better your chances of landing that dream job!

✨Tip Number 2

Showcase your expertise! Prepare a portfolio or presentation that highlights your past projects and achievements in computational biology and machine learning. This will help you stand out during interviews and demonstrate your value to potential employers.

✨Tip Number 3

Practice makes perfect! Get ready for those case study interviews by simulating real-life scenarios. Think about how you would approach onboarding a new pharmaceutical partner and be prepared to discuss specific use cases for AI models.

✨Tip Number 4

Apply through our website! We love seeing candidates who are genuinely interested in joining us at Bioptimus. Make sure to tailor your application to highlight how your skills align with our mission to revolutionise biomedicine.

We think you need these skills to ace Applied AI Scientist (Pharma Partnerships) in London

Machine Learning
Computational Biology
Biopharma R&D
Project Management
Stakeholder Management
Technical Fluency in Biological Data Modalities
Experience with Multi-Omics
Knowledge of Modern ML Architectures
Python Programming
Deep Learning Frameworks (PyTorch, JAX)
Consulting Mindset
Feedback Synthesis
Adaptability
Business Development Skills
Scientific Communication

Some tips for your application 🫡

Tailor Your CV: Make sure your CV is tailored to highlight your experience in computational biology and machine learning. We want to see how your background aligns with the role, so don’t be shy about showcasing relevant projects or achievements!

Showcase Your Technical Skills: When writing your application, emphasise your technical fluency in Python and deep learning frameworks like PyTorch or JAX. We’re looking for someone who can hit the ground running, so let us know what you bring to the table!

Be Clear and Concise: Keep your application clear and to the point. We appreciate a well-structured document that makes it easy for us to see your qualifications and motivations. Remember, less is often more!

Apply Through Our Website: Don’t forget to apply through our website! It’s the best way for us to receive your application and ensures you’re considered for the role. Plus, we love seeing candidates who follow instructions!

How to prepare for a job interview at Bioptimus

✨Know Your Stuff

Make sure you brush up on your knowledge of computational biology and machine learning. Be ready to discuss specific applications of AI in biopharma, especially how foundational models can be integrated into R&D pipelines. This will show that you understand the role and can speak the language of both science and business.

✨Prepare for the Case Study

For the case study interview, think about potential use cases for AI in pharma development. Prepare a mock kick-off document that outlines a project plan and suggests innovative ways our models could add value. This is your chance to demonstrate your strategic thinking and project management skills.

✨Show Your Communication Skills

During the Scientific Deep Dive Presentation, focus on how you present complex ideas clearly and engagingly. Choose a topic that showcases your expertise and relates to Bioptimus's work. Remember, it’s not just about what you know, but how well you can convey that knowledge to others.

✨Engage with Leadership

In the executive interview, be prepared to discuss your long-term vision and how it aligns with the company’s goals. Show enthusiasm for the mission of Bioptimus and be ready to ask insightful questions about their future direction. This demonstrates your genuine interest in being part of their journey.

Applied AI Scientist (Pharma Partnerships) in London
Bioptimus
Location: London
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