Senior Machine Learning Research Scientist (m/f/d) - Generative AI for Drug Design

Posted Yesterday
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Berlin, DEU
In-Office
Senior level
Artificial Intelligence • Healthtech • Machine Learning • Natural Language Processing • Biotech • Pharmaceutical
We’re in relentless pursuit of breakthroughs that change patients’ lives.
The Role
Design, implement, and validate state-of-the-art generative and self-supervised machine learning models for molecular and ligand-based drug design. Develop predictive and representation-learning approaches using large-scale proprietary and external biological datasets, collaborate with computational biology and chemistry teams, and translate research into applied drug discovery solutions and scientific publications.
Summary Generated by Built In
A career at Pfizer offers opportunity, ownership and impact.
All over the world, Pfizer colleagues work together to positively impact health for everyone, everywhere. Our colleagues have the opportunity to grow and develop a career that offers both individual and company success; be part of an ownership culture that values diversity and where all colleagues are energized and engaged; and the ability to impact the health and lives of millions of people. Pfizer, a global leader in the biopharmaceutical industry, is continuously seeking top talent who are inspired by our purpose to innovate to bring therapies to patients that significantly improve their lives.
Right now, we are seeking highly qualified candidates to fill the position:
Senior Machine Learning Research Scientist (m/f/d) - Generative AI for Drug Design
Location: Berlin, Germany
Join our pioneering team at the forefront of AI-driven drug discovery.
As authors of the FLOWR and PILOT frameworks, we are expanding our group of machine learning research scientists to further advance the development and application of state-of-the-art generative models for both structure- and ligand-based drug design. In this role, you will design, implement, and validate novel machine learning tools that generate testable hypotheses and help accelerate the entire drug discovery continuum. You will work with Pfizer's rich proprietary data, large-scale external datasets, and ultra-large data from strategic collaborations to push the boundaries of our machine learning capabilities. This is a unique opportunity to contribute to cutting-edge research while translating innovation into real-world impact for patients.
What You Will Do
  • Design, develop, and validate state-of-the-art machine learning models, with a focus on generative AI and self-supervised learning
  • Apply modern generative frameworks (e.g., diffusion or flow-based approaches) to molecular design challenges
  • Develop predictive models combining structural and biochemical data (e.g., binding affinity prediction)
  • Explore and implement novel representation learning approaches using large-scale, unlabeled datasets
  • Translate emerging research in machine learning into impactful applications in drug discovery
  • Collaborate with cross-functional experts in computational biology, chemistry, and medicine design
  • Contribute to publications, conferences, and external scientific engagement

Your Profile
We are looking for individuals with strong technical expertise and curiosity to drive innovation. You may bring experience through different pathways:
Required Qualifications:
  • Advanced degree or equivalent experience in Computer Science, Machine Learning, Mathematics, Computational Biology, or a related field
  • Proven experience in developing machine learning models and algorithms
  • Strong programming skills (e.g., Python)
  • Experience working with scientific or complex structured datasets

Preferred Qualifications:
  • Strong publication record in machine learning or computational science (e.g., NeurIPS, ICML, ICLR or comparable venues)
  • Hands-on experience implementing deep learning models using frameworks such as PyTorch
  • Expertise in modern generative modeling techniques, such as diffusion models, flow-matching approaches, reinforcement learning and/or self-supervised learning methods (e.g., JEPA)
  • Experience working with scientific data types relevant to drug discovery (e.g., molecular structures, protein data, or large-scale biological datasets)
  • Experience with high-performance computing environments (e.g., SLURM) and/or cloud platforms (e.g., AWS, Google Cloud)
  • Familiarity with cheminformatics tools (e.g., RDKit)
  • Proven ability to translate research ideas into applied solutions in a scientific or industrial setting

Technologies We Use
Slurm-based on-premise compute clusters, Google Cloud Platform, AWS, Docker, Kubernetes, Python (PyTorch, numpy, pandas, scikit-learn, RDKit).
" Breakthroughs that change patients ' lives " - Unser klares Unternehmensziel ist es, Durchbrüche zu erreichen, die das Leben von PatienInnen verändern. Sie sind der Sinn unseres Tuns. Wenn Sie Teil dieser Vision sein wollen und die gleiche Leidenschaft teilen, ist Pfizer der ideale Ort, um eine Karriere zu beginnen oder um eine erfolgreich fortzusetzen.
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Pfizer endeavors to make www.pfizer.com/careers accessible to all users. If you would like to contact us regarding the accessibility of our website or need assistance completing the application process and/or interviewing, please email [email protected]. This is to be used solely for accommodation requests with respect to the accessibility of our website, online application process and/or interviewing. Requests for any other reason will not be returned.
Um mehr über zulässige und unzulässige Anwendungen von KI im Rekrutierungsprozess zu erfahren, lesen Sie bitte unsere Richtlinien zur Nutzung von KI durch Kandidatinnen und Kandidaten auf Pfizer Careers .
Information & Business Tech

Skills Required

  • Advanced degree or equivalent experience in Computer Science, Machine Learning, Mathematics, Computational Biology, or a related field
  • Proven experience in developing machine learning models and algorithms
  • Strong programming skills (e.g., Python)
  • Experience working with scientific or complex structured datasets
  • Strong publication record in machine learning or computational science (e.g., NeurIPS, ICML, ICLR)
  • Hands-on experience implementing deep learning models using frameworks such as PyTorch
  • Expertise in modern generative modeling techniques (diffusion models, flow-matching, reinforcement learning, self-supervised methods like JEPA)
  • Experience working with molecular structures, protein data, or large-scale biological datasets relevant to drug discovery
  • Experience with high-performance computing environments (SLURM) and/or cloud platforms (AWS, Google Cloud)
  • Familiarity with cheminformatics tools (RDKit)
  • Proven ability to translate research ideas into applied solutions in a scientific or industrial setting

What the Team is Saying

Daniel
Anna
Esteban
Pfizer

Pfizer Compensation & Benefits Highlights

  • Healthcare Strength Multiple U.S. medical plan options include telehealth, comprehensive mental‑health support, fertility/family‑building benefits, transgender‑inclusive coverage, and certain Pfizer medications at no cost. A Wellbeing Wallet and wellness resources broaden the health and wellbeing offering.
  • Retirement Support A 401(k) with company matching is paired with an additional Pfizer Retirement Savings Contribution, alongside company‑paid life and disability insurance. One‑on‑one financial planning support is provided through Fidelity.
  • Leave & Time Off Breadth Paid time off spans vacation, holidays, and personal days, with additional caregiver and medical leave. U.S. parental leave commonly includes 12 weeks paid with options for additional unpaid bonding time and a return‑to‑work transition.

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The Company
HQ: New York, NY
121,990 Employees
Year Founded: 1848

What We Do

Our purpose ensures that patients remain at the center of all we do. We live our purpose by sourcing the best science in the world; partnering with others in the healthcare system to improve access to our medicines; using digital technologies to enhance our drug discovery and development, as well as patient outcomes; and leading the conversation to advocate for pro-innovation/pro-patient policies.

Why Work With Us

We are the inventors, the problem solvers, the big thinkers — those who surmount any hurdle to deliver breakthrough medicines to the people who are counting on them the most.

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Pfizer Offices

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