Sr. Data Scientist / Machine Learning Engineer - GenAI & LLM
Sr. Data Scientist / Machine Learning Engineer - GenAI & LLM

Sr. Data Scientist / Machine Learning Engineer - GenAI & LLM

London Full-Time 43200 - 72000 £ / year (est.) No home office possible
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At a Glance

  • Tasks: Develop and optimise LLM solutions while collaborating with customers and cross-functional teams.
  • Company: Join Databricks, a leading data and AI company trusted by over 10,000 organisations globally.
  • Benefits: Enjoy comprehensive benefits, remote work options, and a commitment to diversity and inclusion.
  • Why this job: Fuel your curiosity in ML trends and make a real impact in the tech world.
  • Qualifications: Experience in Generative AI, data science, and machine learning tools is essential.
  • Other info: Opportunity to present at conferences and mentor within the ML community.

The predicted salary is between 43200 - 72000 £ per year.

The Machine Learning (ML) Practice team is a highly specialized customer-facing ML team at Databricks facing an increasing demand for Large Language Model (LLM)-based solutions. We deliver professional services engagements to help our customers build, scale, and optimize ML pipelines, as well as put those pipelines into production. We work cross-functionally to shape long-term strategic priorities and initiatives alongside engineering, product, and developer relations, as well as support internal subject matter expert (SME) teams. We view our team as an ensemble: we look for individuals with strong, unique specializations to improve the overall strength of the team. This team is the right fit for you if you love working with customers, teammates, and fueling your curiosity for the latest trends in LLMs, MLOps, and ML more broadly.

The impact you will have:

  • Develop LLM solutions on customer data such as RAG architectures on enterprise knowledge repos, querying structured data with natural language, and content generation.
  • Build, scale, and optimize customer data science workloads and apply best in class MLOps to productionize these workloads across a variety of domains.
  • Advise data teams on various data science such as architecture, tooling, and best practices.
  • Present at conferences such as Data+AI Summit.
  • Provide technical mentorship to the larger ML SME community in Databricks.
  • Collaborate cross-functionally with the product and engineering teams to define priorities and influence the product roadmap.

What we look for:

  • Experience building Generative AI applications, including RAG, agents, text2sql, fine-tuning, and deploying LLMs, with tools such as HuggingFace, Langchain, and OpenAI.
  • Extensive hands-on industry data science experience, leveraging typical machine learning and data science tools including pandas, scikit-learn, and TensorFlow/PyTorch.
  • Experience building production-grade machine learning deployments on AWS, Azure, or GCP.
  • Graduate degree in a quantitative discipline (Computer Science, Engineering, Statistics, Operations Research, etc.) or equivalent practical experience.
  • Experience communicating and/or teaching technical concepts to non-technical and technical audiences alike.
  • Passion for collaboration, life-long learning, and driving business value through ML.
  • (Preferred) Experience working with Databricks & Apache Spark to process large-scale distributed datasets.

About Databricks:

Databricks is the data and AI company. More than 10,000 organizations worldwide - including Comcast, Condé Nast, Grammarly, and over 50% of the Fortune 500 - rely on the Databricks Data Intelligence Platform to unify and democratize data, analytics and AI. Databricks is headquartered in San Francisco, with offices around the globe and was founded by the original creators of Lakehouse, Apache Spark, Delta Lake and MLflow.

Commitment to Diversity and Inclusion:

At Databricks, we are committed to fostering a diverse and inclusive culture where everyone can excel. We take great care to ensure that our hiring practices are inclusive and meet equal employment opportunity standards.

Sr. Data Scientist / Machine Learning Engineer - GenAI & LLM employer: Databricks

At Databricks, we pride ourselves on being an exceptional employer, particularly for those in the Sr. Data Scientist / Machine Learning Engineer role. Our vibrant work culture fosters collaboration and innovation, providing ample opportunities for professional growth and development in the rapidly evolving field of AI and machine learning. With a commitment to diversity and inclusion, alongside comprehensive benefits tailored to meet the needs of our employees, Databricks is the ideal place for individuals eager to make a meaningful impact while working with cutting-edge technologies in a dynamic environment.
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Contact Detail:

Databricks Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Sr. Data Scientist / Machine Learning Engineer - GenAI & LLM

✨Tip Number 1

Familiarise yourself with the latest trends in Generative AI and Large Language Models. Being able to discuss recent advancements or case studies during your interview can demonstrate your passion and knowledge in the field.

✨Tip Number 2

Showcase your experience with tools like HuggingFace, Langchain, and OpenAI. Prepare specific examples of projects where you've successfully implemented these technologies, as this will highlight your hands-on expertise.

✨Tip Number 3

Emphasise your ability to communicate complex technical concepts to both technical and non-technical audiences. Consider preparing a brief presentation or explanation of a project you've worked on that illustrates this skill.

✨Tip Number 4

Network with professionals in the data science and ML community, especially those who work with Databricks or similar platforms. Engaging in discussions or attending relevant meetups can provide insights and potentially lead to referrals.

We think you need these skills to ace Sr. Data Scientist / Machine Learning Engineer - GenAI & LLM

Generative AI Development
Large Language Models (LLMs)
RAG Architectures
Text-to-SQL
Fine-tuning LLMs
Deployment of ML Models
HuggingFace
Langchain
OpenAI
Pandas
Scikit-learn
TensorFlow
PyTorch
AWS
Azure
GCP
Data Science Workflows
MLOps Best Practices
Technical Communication
Cross-functional Collaboration
Data Processing with Databricks
Apache Spark

Some tips for your application 🫡

Tailor Your CV: Make sure your CV highlights relevant experience in Generative AI applications, LLMs, and MLOps. Use specific examples of projects you've worked on that align with the job description.

Craft a Compelling Cover Letter: In your cover letter, express your passion for collaboration and lifelong learning. Mention how your skills can drive business value through machine learning, and refer to specific tools and technologies mentioned in the job description.

Showcase Technical Skills: Clearly outline your hands-on experience with data science tools like pandas, scikit-learn, and TensorFlow/PyTorch. Include any relevant projects or achievements that demonstrate your ability to build production-grade ML deployments.

Prepare for Technical Questions: Anticipate technical questions related to LLMs and MLOps during the interview process. Be ready to discuss your experience with tools like HuggingFace and Langchain, and how you have applied them in real-world scenarios.

How to prepare for a job interview at Databricks

✨Showcase Your Technical Expertise

Be prepared to discuss your experience with Generative AI applications and LLMs in detail. Highlight specific projects where you've built, scaled, or optimised ML pipelines, and be ready to explain the tools you used, such as HuggingFace or TensorFlow.

✨Demonstrate Your Communication Skills

Since the role involves advising data teams and presenting at conferences, practice explaining complex technical concepts in simple terms. This will show your ability to communicate effectively with both technical and non-technical audiences.

✨Emphasise Collaboration Experience

Discuss your experience working cross-functionally with product and engineering teams. Share examples of how you've influenced product roadmaps or collaborated on strategic initiatives, as this is crucial for the team dynamic at Databricks.

✨Stay Updated on Industry Trends

Show your passion for lifelong learning by discussing the latest trends in LLMs and MLOps. Mention any recent developments or technologies that excite you, as this demonstrates your curiosity and commitment to staying ahead in the field.

Sr. Data Scientist / Machine Learning Engineer - GenAI & LLM
Databricks
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  • Sr. Data Scientist / Machine Learning Engineer - GenAI & LLM

    London
    Full-Time
    43200 - 72000 £ / year (est.)

    Application deadline: 2027-05-13

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    Databricks

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