Job Information
Amazon AI Language Engineer, Rufus LangEn in London, United Kingdom
Description
The Conversational Shopping team is looking for a Language Engineer to contribute to efficiencies and innovation in its efforts to deliver a seamless, fluent, and multilingual experience for AI-assisted shopping. This is an opportunity to join the high-performing team behind Amazon's Generative AI shopping initiatives such as Amazon's AI Shopping assistant. Our objective is to make it easy for customers worldwide to find and discover the best products by providing comparisons, recommendations, and answers to specific product questions. This role is cross-functional, requiring collaboration across global product, design, science, and engineering teams.
We are looking for candidates who are passionate about the intersection of language and technology and who are keen to use their technical abilities to develop automated, scalable solutions to challenges in the Large Language Model (LLM) space. Applying a combination of expertise in LLMs, coding, and linguistics (i.e., semantics, syntax, pragmatics), they will overcome complex problems in model evaluation, automation, and context engineering for multilingual agentic systems.
In this role within the International Editorial team, the candidate will contribute to our evaluation-driven product development strategy, working in close collaboration with Language Editors, Product Managers, Applied Scientists, and Software Engineers on initiatives that drive editorial quality, speed, and consistency. They will design processes to facilitate the production of high-quality editorial data for evaluating and improving the AI Shopping experience in different languages. The candidate will also create and develop LLM-assisted editorial tools and automated annotations (e.g., LLM-as-a-judge) to support the humans-in-the-loop (HITL) work of the broader Editorial team. Additionally, they will define requirements for internal tooling by developing prototypes. They will be responsible for authoring, optimizing, and managing system prompts for multilingual, customer-facing LLM systems. Drawing on data processing and analysis skills, they will evaluate and report on model performance and annotation quality, producing regular reports for stakeholders. By creating and synthesizing quality metrics, they will also support Conversational Shopping teams in delivering both internal stakeholder requirements and the desired Amazon customer outcomes.
This role requires strong analytical and technical skills as well as experience in language technology to help us measure, analyze, and solve complex problems. The ideal candidate should have experience in creating technical solutions for automating and processing data workflows at scale while upholding the highest linguistic quality standards. They should also have exceptional writing and communication skills with the ability to interface between both technical and non-technical teams.
Key job responsibilities
Develop LLM-as-a-judge systems to support Human-in-the-loop evaluations
Automate operations and perform data analysis using scripting languages (e.g. Python)
Author, optimize, and manage system prompts for multi-lingual, customer-facing LLM systems
Integrate API calls into Retrieval Augmented Generation (RAG) systems
Evaluate model performance and annotation quality to produce reports for stakeholders
Produce, process, and manipulate different types of language data
Contribute to defining platform requirements for internal tooling by developing prototypes
Raise the quality bar on editorial workflows and SOPs through standardization, documentation, and periodic audits and investigations
Support processes and mechanisms to onboard and upskill Editors and AI Tutors on an ongoing basis
Support editorial data production and collection by defining project scope with internal teams
Design, implement, and refine control mechanisms, metrics, and methodologies to ensure editorial and annotation quality
Collaborate with editors, applied scientists, engineers, and product managers to deliver an optimal customer experience by defining metrics, guidelines, and workflows
Deliver across parallel workstreams, balancing timelines, impact, and stakeholder requirements
Basic Qualifications
Bachelor's or Master's Degree in Applied Linguistics, Computational Linguistics, Natural Language Processing (NLP), or related field.
Experience with Large Language Models, NLP, or Machine Learning.
Experience with Python libraries for data analysis such as pandas and scikit-learn.
Ability to navigate a Unix terminal and use common command line tools.
Familiarity with AI coding assistants.
Excellent communication and strong organizational skills with a keen eye for details.
Comfortable working in a fast-paced, cross-functional, and dynamic work environment.
Willingness to support several projects at one time and to accept reprioritization as necessary.
Preferred Qualifications
PhD in Applied Linguistics, Computational Linguistics, Natural Language Processing (NLP), or related technical field.
This position will work in English. Fluency in a second language preferred but not required: Portuguese or Turkish (most favourable), French, German, Italian, Spanish, or Japanese.
Experience with SQL and Git.
Experience building RAG or agentic systems.
Experience conducting quantitative analysis.
Experience building data pipelines.
Experience with AWS services (Bedrock, S3, EC2, etc.).
Knowledge of user experience concepts and methods.
Familiarity with online retail (e-commerce).
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