Semiconductor Material Science Research Scientist
Semiconductor Material Science Research Scientist

Semiconductor Material Science Research Scientist

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

  • Tasks: Drive groundbreaking research in semiconductor materials using AI and computational simulations.
  • Company: Join Google DeepMind, a leader in innovative scientific discovery.
  • Benefits: Competitive salary, diverse team, and opportunities for impactful research.
  • Why this job: Be at the forefront of technology, solving real-world challenges with cutting-edge materials.
  • Qualifications: PhD in relevant field and expertise in computational materials science required.
  • Other info: Collaborative environment with excellent career growth and diversity valued.

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

Snapshot Science is at the heart of everything we do at Google DeepMind. From the beginning, we took inspiration from science to build better algorithms, and now, we want to use our toolkit to accelerate scientific discovery. By bringing together specialists with backgrounds in machine learning, computer science, physics, chemistry, biology and more, we’re optimistic that we can build new methods that will push the boundaries of what is possible and help solve the biggest problems facing humanity.

About Us: Google DeepMind (GDM) is pursuing a ground-breaking research program in materials, aiming to accelerate the discovery of new functional materials by combining the predictive power of artificial intelligence (AI) and computational simulation with automated experimentation. The team is establishing experimental capacity to create a closed-loop, AI-driven discovery engine. Computational simulation is critical for grounding the AI and providing quick in silico feedback before materials are sent off to the lab for experimental validation.

The Role: We are seeking a highly motivated computational materials scientist, with experience designing semiconductor materials, to join our discovery efforts. This role is focused on hands‑on modeling and in‑depth analysis to drive real‑world discovery of next‑generation materials for advanced semiconductor applications. You will be a key contributor to our team, bringing insight into key semiconductor material problems, running advanced simulations, and closely collaborating with senior computational researchers, experimentalists, and AI specialists to drive our mission towards breakthrough material discoveries.

Key Responsibilities:

  • Semiconductor Materials Expertise: Apply deep physical and chemical intuition to problems in semiconductor materials discovery, particularly understanding structure‑property relationships at the atomic scale and at interfaces with semiconductors.
  • End‑to‑End Discovery: Bridging the gap between theory and reality by using computational tools to identify candidate semiconductor materials and working with experimentalists to synthesize them in the lab.
  • Hands‑on Simulation & Analysis: Execute and analyze advanced computational simulations (e.g., DFT, DFPT, MD) with a strong focus on predicting key properties for semiconductors, such as band gaps, defect levels, leakage currents, dielectric constants, and interfacial properties.
  • Workflow Execution: Utilize and help refine state‑of‑the‑art computational tools and automated, high‑throughput workflows on our large‑scale compute infrastructure.
  • Data Generation & Integrity: Ensure the generation of high‑quality, reproducible computational data from your simulations. Contribute to structuring and curating simulation databases to train next‑generation AI models.
  • Cross‑functional Collaboration: Work closely with a diverse team of software engineers, AI specialists, computational researchers, and experimental material scientists.
  • Reporting & Communication: Clearly and efficiently report on computational progress, new material predictions, and challenges to the wider material discovery team.

About You: In order to set you up for success as a Research Scientist at Google DeepMind, we look for the following skills and experience:

  • A PhD in Computational Materials Science, Solid‑State Chemistry, Condensed Matter Physics, or a related field.
  • A deep understanding of material requirements and material processes in the semiconductor industry.
  • Strong technical expertise in first‑principles simulation methods (especially DFT and DFPT - Density Functional Perturbation Theory).
  • Hands‑on experience using computational packages like VASP, Quantum ESPRESSO, or similar.
  • Strong programming skills (e.g., Python) for workflow management, data analysis, and tool automation.
  • Demonstrated ability to manage and execute computational research tasks effectively, from simulation setup to data analysis and communication.
  • Excellent teamwork and communication skills, with a desire to work in a fast‑paced, interdisciplinary collaborative environment.

Additional Advantages:

  • A track record of bridging the gap between computational prediction and experimental discovery.
  • Experience in developing or applying machine learning models for materials property prediction.
  • Experience with high‑throughput computational workflows and running simulations on HPC or cloud infrastructure.
  • Expertise in simulating defects and interfaces in materials.
  • Familiarity with molecular dynamics (MD) packages like LAMMPS.
  • A track record of research published in peer‑reviewed journals.

At Google DeepMind, we value diversity of experience, knowledge, backgrounds and perspectives and harness these qualities to create extraordinary impact. We are committed to equal employment opportunity regardless of sex, race, religion or belief, ethnic or national origin, disability, age, citizenship, marital, domestic or civil partnership status, sexual orientation, gender identity, pregnancy, or related condition (including breastfeeding) or any other basis as protected by applicable law. If you have a disability or additional need that requires accommodation, please do not hesitate to let us know.

Semiconductor Material Science Research Scientist employer: Google DeepMind

At Google DeepMind, we are dedicated to fostering a collaborative and innovative work environment that empowers our employees to push the boundaries of scientific discovery. As a Semiconductor Material Science Research Scientist, you will have access to cutting-edge technology and resources, alongside opportunities for professional growth and interdisciplinary collaboration with experts in AI and materials science. Our commitment to diversity and inclusion ensures that every voice is valued, making us an exceptional employer for those seeking meaningful and impactful work.
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Contact Detail:

Google DeepMind Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Semiconductor Material Science Research Scientist

✨Tip Number 1

Network like a pro! Reach out to professionals in the semiconductor field on LinkedIn or at industry events. A friendly chat can lead to opportunities that aren’t even advertised yet.

✨Tip Number 2

Show off your skills! Create a portfolio showcasing your computational simulations and any relevant projects. This gives potential employers a taste of what you can bring to the table.

✨Tip Number 3

Prepare for interviews by brushing up on your technical knowledge and problem-solving skills. Be ready to discuss your past experiences and how they relate to the role at Google DeepMind.

✨Tip Number 4

Don’t forget to apply through our website! It’s the best way to ensure your application gets seen by the right people. Plus, it shows you’re genuinely interested in joining our team.

We think you need these skills to ace Semiconductor Material Science Research Scientist

Computational Materials Science
Semiconductor Materials Expertise
First-Principles Simulation Methods
Density Functional Theory (DFT)
Density Functional Perturbation Theory (DFPT)
Computational Packages (e.g., VASP, Quantum ESPRESSO)
Programming Skills (e.g., Python)
Data Analysis
Workflow Management
High-Throughput Computational Workflows
Collaboration Skills
Communication Skills
Molecular Dynamics (MD) Simulation
Research Publication in Peer-Reviewed Journals

Some tips for your application 🫡

Show Your Passion for Science: When writing your application, let your enthusiasm for materials science shine through! We want to see how your background and experiences align with our mission at Google DeepMind. Share specific examples of your work in semiconductor materials and how it has inspired you.

Be Clear and Concise: Keep your application straightforward and to the point. We appreciate clarity, so make sure to highlight your key skills and experiences without unnecessary fluff. Use bullet points if it helps to organise your thoughts better!

Tailor Your Application: Make sure to customise your application for the role. Highlight your experience with computational tools and simulations that are relevant to semiconductor materials. Show us how your unique skills can contribute to our groundbreaking research programme.

Apply Through Our Website: We encourage you to apply directly through our website. It’s the best way to ensure your application gets into the right hands. Plus, it shows us you’re serious about joining our team at Google DeepMind!

How to prepare for a job interview at Google DeepMind

✨Know Your Semiconductor Stuff

Make sure you brush up on your knowledge of semiconductor materials and their properties. Be ready to discuss specific examples of how you've applied your understanding of structure-property relationships in past projects. This will show that you can bridge the gap between theory and practical application.

✨Show Off Your Simulation Skills

Prepare to talk about your hands-on experience with computational tools like DFT and DFPT. Bring examples of simulations you've run, the challenges you faced, and how you overcame them. This will demonstrate your technical expertise and problem-solving abilities.

✨Collaboration is Key

Highlight your teamwork skills by sharing experiences where you collaborated with diverse teams, especially with experimentalists or AI specialists. Discuss how you communicated complex ideas effectively and contributed to a successful project outcome.

✨Be Ready for Technical Questions

Expect some deep technical questions related to first-principles simulation methods and programming skills. Brush up on your Python knowledge and be prepared to discuss how you've used it for workflow management or data analysis in your previous roles.

Semiconductor Material Science Research Scientist
Google DeepMind

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