Research Engineer, LLM for Science
Research Engineer, LLM for Science

Research Engineer, LLM for Science

London Full-Time 36000 - 60000 ÂŁ / year (est.) Home office (partial)
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At a Glance

  • Tasks: Join a team to develop AI solutions for scientific challenges using large language models.
  • Company: Be part of Google DeepMind, a leader in AI research dedicated to solving intelligence for public benefit.
  • Benefits: Enjoy a collaborative environment with opportunities for learning and growth, plus flexible working options.
  • Why this job: Work on groundbreaking projects that push the boundaries of science and technology while making a real impact.
  • Qualifications: Masters in computer science or related field; experience with LLMs and programming languages like Python or C++.
  • Other info: Diversity is valued; all backgrounds are encouraged to apply.

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

Our special interdisciplinary team combines the best techniques from deep learning, reinforcement learning and systems neuroscience to build general-purpose learning algorithms. We have already made a number of high profile breakthroughs towards building artificial general intelligence, and we have all the ingredients in place to make further significant progress over the coming years. About Us We’re a dedicated scientific community, committed to “solving intelligence” and ensuring our technology is used for widespread public benefit. We’ve built a supportive and inclusive environment where collaboration is encouraged and learning is shared freely. We don’t set limits based on what others think is possible or impossible. We drive ourselves and inspire each other to push boundaries and achieve ambitious goals. The Role To succeed in this role you will need to be passionate about advancing science using recent breakthroughs in large language models, in addition to standard machine learning and other computational techniques. You\’ll join an interdisciplinary team of domain experts, ML researchers and engineers exploring a diverse set of important scientific problems in biology, physics, mathematics and other areas. Our work is organised into several longer-term focus areas which aim to achieve step changes to the state-of-the-art (as exemplified in e.g. AlphaFold , AlphaMissense and FunSearch ). You\’ll leverage our unique mix of expertise, data and computational resources to experiment and iterate both rapidly and at scale. As an embedded LLM Research Engineer you will collaborate with researchers and software engineers to develop and run experiments exploring new applications of AI – particularly LLMs – to science problems. The team is pioneering in many different domains so you may take part in exploratory work validating early ideas or work in a maturing area to deepen and exploit a promising line of research. You may also contribute to the scientific knowledge and experience of the team with your own scientific domain knowledge. You will work with internal and external researchers on pioneering research bridging AI and science. Key responsibilities: Plan and perform rapid prototyping of machine learning techniques applied to problems in science. Undertake exploratory analysis to inform experimentation and research directions. Design and run scalable infrastructure and procedures to train and evaluate modern machine learning systems. Implement tools, libraries and frameworks, and build on existing systems, to speed up and enable new research. Report and present software developments, experimental results and data analysis clearly and efficiently. Collaborate with internal and external scientific domain experts. The role will suit candidates who enjoy working in a heavily experimental setting with large and noisy datasets and who wish to immerse themselves in innovative science, LLM, ML and AI research. About You In order to set you up for success as a Research Engineer at Google DeepMind, we look for the following skills and experience: Masters degree in computer science, electrical engineering, science, mathematics or equivalent experience. Experience working with large language models (LLMs) Experience working with large and noisy datasets. Experience with at least one programming language (with a preference for those commonly used in machine learning or scientific computing such as Python or C++). Knowledge of linear algebra, calculus and statistics equivalent to at least first-year university coursework. Experience exploring, analysing and visualising data. Experience using Jax, PyTorch, TensorFlow, NumPy, Pandas or similar ML/scientific libraries. In addition, the following would be an advantage: Experience with frontier LLM development. Experience collaborating across fields. Scientific domain knowledge. Contributions to large infrastructure projects. When assessing technical background we will take a holistic view of the mix of scientific, ML and computational experience. We do not expect you to be an expert in all fields simultaneously. However, except for scientific knowledge, since the role serves as a bridge between all three, some experience in each is necessary. 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. Apply for this job * indicates a required field First Name * Last Name * Email * Phone Resume/CV * Enter manually Accepted file types: pdf, doc, docx, txt, rtf Enter manually Accepted file types: pdf, doc, docx, txt, rtf LinkedIn Profile Link to external profile e.g. LinkedIn, GitHub etc. Where did you hear about this role? * Select… UK Demographic Questions Google DeepMind is committed to equal opportunity employment regardless of race, religion or belief, ethnic or national origin, disability, age, citizenship, marital status, domestic or civil partnership status, sexual orientation, gender identity or any other basis as protected by applicable law. A voluntary self-identification question enables us to monitor and evaluate the effectiveness of our equal opportunities policy within our recruitment process. Your information is used in an aggregated form for these limited purposes and will not form part of your application. Please indicate your race/ethnic group (choose all that apply) * Select… #J-18808-Ljbffr

Research Engineer, LLM for Science employer: Google DeepMind

At Google DeepMind, we pride ourselves on being an exceptional employer, fostering a collaborative and inclusive work culture that encourages innovation and scientific exploration. Our interdisciplinary team is dedicated to pushing the boundaries of artificial intelligence for the greater good, offering employees unparalleled opportunities for growth and development in a cutting-edge environment located in the heart of the tech industry. Join us to be part of groundbreaking research that not only advances science but also contributes to meaningful societal impact.
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Contact Detail:

Google DeepMind Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Research Engineer, LLM for Science

✨Tip Number 1

Familiarise yourself with the latest breakthroughs in large language models (LLMs) and their applications in scientific research. This will not only help you understand the role better but also allow you to engage in meaningful conversations during interviews.

✨Tip Number 2

Network with professionals in the field of AI and science, especially those who have experience with interdisciplinary projects. Attend relevant conferences or webinars to connect with potential colleagues and learn about current trends and challenges.

✨Tip Number 3

Showcase your hands-on experience with machine learning frameworks like TensorFlow or PyTorch by working on personal projects or contributing to open-source initiatives. This practical knowledge can set you apart from other candidates.

✨Tip Number 4

Prepare to discuss how your unique scientific domain knowledge can contribute to the team’s goals. Think about specific examples where your expertise could bridge gaps between AI and scientific research, demonstrating your value to the team.

We think you need these skills to ace Research Engineer, LLM for Science

Experience with large language models (LLMs)
Proficiency in Python or C++
Knowledge of linear algebra, calculus and statistics
Experience with machine learning frameworks such as Jax, PyTorch, TensorFlow
Data analysis and visualisation skills
Ability to work with large and noisy datasets
Rapid prototyping of machine learning techniques
Collaboration with interdisciplinary teams
Strong problem-solving skills
Experience in scientific computing
Understanding of experimental design
Excellent communication skills for reporting and presenting results

Some tips for your application 🫡

Understand the Role: Before applying, make sure you fully understand the responsibilities and requirements of the Research Engineer position. Familiarise yourself with the key skills mentioned in the job description, such as experience with large language models and programming languages like Python or C++.

Tailor Your CV: Customise your CV to highlight relevant experience and skills that align with the job description. Emphasise your background in machine learning, data analysis, and any specific projects related to LLMs or scientific computing.

Craft a Compelling Cover Letter: Write a cover letter that showcases your passion for advancing science through AI. Discuss how your unique experiences and knowledge can contribute to the team's goals and mention any specific projects or achievements that demonstrate your capabilities.

Showcase Collaborative Experience: Since the role involves collaboration with domain experts and researchers, include examples in your application that demonstrate your ability to work effectively in interdisciplinary teams. Highlight any past experiences where you successfully collaborated across different fields.

How to prepare for a job interview at Google DeepMind

✨Show Your Passion for Science and AI

Make sure to express your enthusiasm for advancing science through AI, particularly with large language models. Share specific examples of how you've applied ML techniques in scientific contexts or any relevant projects that demonstrate your commitment to this field.

✨Demonstrate Technical Proficiency

Be prepared to discuss your experience with programming languages commonly used in machine learning, such as Python or C++. Highlight your familiarity with libraries like TensorFlow or PyTorch, and be ready to explain how you've used them in past projects.

✨Prepare for Problem-Solving Scenarios

Expect to tackle hypothetical scenarios or case studies during the interview. Practice articulating your thought process when approaching complex problems, especially those involving large datasets or experimental setups in science.

✨Emphasise Collaboration Skills

Since the role involves working with interdisciplinary teams, highlight your experience collaborating across different fields. Share examples of how you've successfully worked with domain experts or contributed to team projects, showcasing your ability to communicate effectively and integrate diverse perspectives.

Research Engineer, LLM for Science
Google DeepMind
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