Data Scientist, Rufus Experiences Science
Data Scientist, Rufus Experiences Science

Data Scientist, Rufus Experiences Science

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

  • Tasks: Join us as an Applied Scientist to innovate AI-driven shopping experiences.
  • Company: Rufus Experiences Science is at the forefront of AI technology for shopping.
  • Benefits: Enjoy a dynamic work environment with opportunities for growth and collaboration.
  • Why this job: Shape the future of shopping with cutting-edge AI and make a real impact.
  • Qualifications: Experience in machine learning, data analysis, and programming languages like Python or SQL required.
  • Other info: Be part of a diverse team in London, working on exciting multimodal projects.

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

We are looking for a passionate, talented, and inventive Applied Scientist with a strong machine learning background to help build industry-leading language technology powering Rufus, our AI-driven search and shopping assistant, helping customers with their shopping tasks at every step of their shopping journey. This innovative role focuses on developing conversation-based, multimodal shopping experiences, utilising multimodal large language models (MLLMs), generative AI, advanced machine learning (ML) technologies and computer vision.

Our mission in conversational shopping is to make it easy for customers to find and discover the best products to meet their needs by helping with their product research, providing comparisons and recommendations, answering product questions, enabling shopping directly from images or videos, providing visual inspiration, and more. We do this by pushing the SoTA in Natural Language Processing (NLP), Generative AI, Multimodal Large Language Model (MLLM), Natural Language Understanding (NLU), Machine Learning (ML), Retrieval-Augmented Generation (RAG), Computer Vision, Responsible AI, LLM Agents, Evaluation, and Model Adaptation.

Key job responsibilities

  • As an Applied Scientist on our team, you will be responsible for the research, design, and development of new AI technologies that will shape the future of shopping experiences.
  • You will play a critical role in driving the development of multimodal conversational systems, in particular those based on large language models, information retrieval, recommender systems and knowledge graph, to be tailored to customer needs.
  • You will handle Amazon-scale use cases with significant impact on our customers' experiences.
  • You will collaborate with scientists, engineers, and product partners locally and abroad.
  • Your work will include inventing, experimenting with, and launching new features, products and systems.
  • Perform hands-on analysis and modelling of enormous multimodal datasets to develop insights into how to best help customers throughout their shopping journeys.
  • Use deep learning, ML and MLLM techniques to create scalable language model centric solutions for building shopping assistant systems based on a rich set of structured and unstructured contextual signals.
  • Innovate new methods for understanding, extracting, retrieving and summarising contextual information that allows for the effective grounding of MLLMs, considering memory, compute, latency and quality.
  • Drive end-to-end MLLM projects that have a high degree of ambiguity, scale and complexity.
  • Build models, perform offline and A/B test experiments, optimise and deploy your models into production, working closely with software engineers.
  • Establish automated processes for large-scale data analysis and generation, machine-learning model development, model validation and serving.
  • Communicate results and insights to both technical and non-technical audiences, including through presentations and written reports and publish your work at internal and external conferences.

About the team

You will be part of a dynamic science team based in London, working alongside over 100 engineers, designers and product managers, focused on shaping the future of AI-driven shopping experiences at Amazon. This team works on every aspect of the shopping experience, from understanding multimodal user queries to planning and generating answers that combine text, image, audio and video.

BASIC QUALIFICATIONS

  • Experience with machine learning/statistical modeling data analysis tools and techniques, and parameters that affect their performance.
  • Experience applying theoretical models in an applied environment.
  • Experience working as a Data Scientist.
  • Experience with data scripting languages (e.g. SQL, Python, R etc.) or statistical/mathematical software (e.g. R, SAS, or Matlab).

PREFERRED QUALIFICATIONS

  • Experience in Python, Perl, or another scripting language.
  • Experience in a ML or data scientist role with a large technology company.

Amazon is an equal opportunities employer. We believe passionately that employing a diverse workforce is central to our success. We make recruiting decisions based on your experience and skills. We value your passion to discover, invent, simplify and build. Protecting your privacy and the security of your data is a longstanding top priority for Amazon.

Data Scientist, Rufus Experiences Science employer: ENGINEERINGUK

At Rufus Experiences Science, we pride ourselves on fostering a vibrant and inclusive work culture that encourages innovation and collaboration. As a Data Scientist in our London team, you will have the opportunity to work with cutting-edge AI technologies while contributing to meaningful projects that enhance customer shopping experiences. We offer robust employee growth opportunities, competitive benefits, and a dynamic environment where your ideas can truly make an impact.
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Contact Detail:

ENGINEERINGUK Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Data Scientist, Rufus Experiences Science

✨Tip Number 1

Familiarise yourself with the latest advancements in machine learning and natural language processing. Being well-versed in current trends and technologies will not only boost your confidence but also help you engage in meaningful conversations during interviews.

✨Tip Number 2

Network with professionals in the field of AI and data science. Attend relevant meetups, webinars, or conferences to connect with others who work at companies like Rufus. This can provide valuable insights and potentially lead to referrals.

✨Tip Number 3

Prepare to discuss your hands-on experience with multimodal datasets and deep learning techniques. Be ready to share specific examples of projects you've worked on that demonstrate your ability to innovate and solve complex problems.

✨Tip Number 4

Practice explaining technical concepts to non-technical audiences. Since the role involves communicating results to diverse stakeholders, honing your ability to simplify complex ideas will be a significant advantage during interviews.

We think you need these skills to ace Data Scientist, Rufus Experiences Science

Machine Learning
Natural Language Processing (NLP)
Multimodal Large Language Models (MLLM)
Deep Learning
Data Analysis
Statistical Modelling
Python Programming
SQL
Computer Vision
Generative AI
Information Retrieval
Recommender Systems
Knowledge Graphs
Model Validation
Automated Data Analysis
Communication Skills
Collaboration with Cross-Functional Teams

Some tips for your application 🫡

Tailor Your CV: Make sure your CV highlights relevant experience in machine learning, data analysis, and any specific projects that relate to multimodal language models or AI technologies. Use keywords from the job description to align your skills with what Rufus Experiences Science is looking for.

Craft a Compelling Cover Letter: In your cover letter, express your passion for AI-driven shopping experiences and how your background makes you a perfect fit for the role. Mention specific technologies or methodologies you've worked with that are relevant to the position.

Showcase Your Projects: If you have worked on any projects involving deep learning, natural language processing, or computer vision, be sure to include these in your application. Provide links to your GitHub or portfolio where applicable, as this can demonstrate your practical skills.

Prepare for Technical Questions: Anticipate technical questions related to machine learning and data science during the interview process. Brush up on your knowledge of algorithms, data structures, and statistical modelling techniques that are relevant to the role.

How to prepare for a job interview at ENGINEERINGUK

✨Showcase Your Machine Learning Expertise

Be prepared to discuss your experience with machine learning and statistical modelling. Highlight specific projects where you've applied these techniques, especially in real-world scenarios, as this will demonstrate your practical knowledge.

✨Demonstrate Your Problem-Solving Skills

Expect to face complex problems during the interview. Prepare to explain your thought process when tackling ambiguous challenges, particularly those related to multimodal datasets and language models, as this is crucial for the role.

✨Familiarise Yourself with Multimodal Technologies

Since the role focuses on multimodal conversational systems, brush up on your understanding of technologies like Natural Language Processing (NLP) and Computer Vision. Be ready to discuss how these can enhance shopping experiences.

✨Prepare for Technical Questions

You may be asked technical questions related to data scripting languages like Python or SQL. Review key concepts and be ready to solve coding problems on the spot, as this will showcase your technical proficiency.

Data Scientist, Rufus Experiences Science
ENGINEERINGUK
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