Principal Data Scientist I
$118.3k - $219.8kRELX
We are looking for a Principal Data Scientist I to join our Data Science / Embedded AI Innovation team at LexisNexis. This role is ideal for a highly skilled and experienced generalist data scientist who can independently lead complex AI, machine learning, NLP, analytics, experimentation, evaluation, cloud, and application development initiatives.
In this role, you will provide technical and execution leadership across applied AI solutions, generative AI use cases, machine learning models, data science experimentation, application development, AWS-based solution design, and production evaluation frameworks. You will play a key role in shaping technical direction, improving AI quality, defining measurable outcomes, and driving best practices for responsible, scalable, and reliable AI delivery.
You will also help manage the team’s technical work by coordinating priorities, breaking down work, identifying dependencies, tracking execution, and helping remove blockers. This is a senior individual contributor role and does not include direct people-management responsibility.
The ideal candidate is not limited to traditional data science work. They should be able to move from problem discovery to modeling, experimentation, application development, cloud deployment, evaluation, and production support. They should be comfortable building AI-enabled applications and services that can be used by internal teams, product teams, and customers.
What You’ll DoApplied AI, Machine Learning & Data Science
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Lead design, development, experimentation, and evaluation of AI/ML solutions across multiple product and engineering initiatives.
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Operate as a generalist across machine learning, NLP, generative AI, analytics, experimentation, model evaluation, application development, cloud engineering, and applied data science use cases.
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Develop and improve models, prompts, retrieval strategies, evaluation methods, and data-driven approaches for product-facing AI capabilities.
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Apply statistical, machine learning, and experimentation techniques to solve complex customer and business problems.
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Translate ambiguous business problems into structured data science approaches, measurable objectives, and executable delivery plans.
AI Application Development & Product Prototyping
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Design, build, and iterate on AI-enabled applications, prototypes, internal tools, APIs, services, and proof-of-concepts.
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Develop working solutions that demonstrate business value and can evolve into production-ready capabilities.
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Build application components that integrate models, data pipelines, prompts, retrieval systems, evaluation workflows, and user-facing experiences.
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Partner with engineering teams to transition prototypes and data science solutions into scalable production systems.
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Contribute to backend services, APIs, automation scripts, evaluation dashboards, and workflow tools needed to support AI delivery.
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Ensure applications are designed for reliability, maintainability, observability, security, and scalability.
AWS & Cloud-Based Solution Development
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Design and develop cloud-native AI/ML and data science solutions using AWS services.
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Use AWS capabilities such as S3, Lambda, API Gateway, IAM, CloudWatch, Redshift, Bedrock, Glue, ECS, ECR, and related services where appropriate.
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Build scalable cloud-based workflows for AI experimentation, evaluation, data processing, model integration, and application deployment.
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Partner with platform and engineering teams to ensure AWS-based solutions follow security, compliance, cost, and operational standards.
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Improve performance, cost efficiency, reliability, and maintainability of cloud-based AI and data science applications.
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Support production deployment patterns, monitoring, alerting, logging, and operational readiness for AI-enabled services.
Technical Workstream Leadership
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Play a lead role in managing the team’s technical work, including work breakdown, prioritization support, sequencing, dependency tracking, and delivery coordination.
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Lead complex data science and AI application workstreams from problem definition through research, experimentation, application development, validation, production readiness, and post-launch improvement.
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Guide technical decisions related to model selection, data strategy, application design, AWS architecture, evaluation design, metrics, quality thresholds, and implementation approach.
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Identify risks, blockers, and trade-offs early and communicate them clearly to engineering, product, and leadership stakeholders.
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Help establish standards, reusable patterns, and best practices for AI/ML delivery, application development, and cloud-based implementation across the team.
Generative AI, NLP & Evaluation
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Design and evaluate LLM-based and NLP-based solutions for document-heavy, research-oriented, and workflow-integrated use cases.
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Build and improve evaluation frameworks for AI quality, including accuracy, relevance, completeness, groundedness, consistency, latency, and user impact.
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Conduct error analysis, benchmarking, model comparisons, prompt testing, retrieval evaluation, and iterative quality improvement.
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Partner with engineering teams to ensure AI solutions are observable, testable, reliable, and production-ready.
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Support responsible AI practices, including explainability, governance, privacy, security, and compliance expectations.
Analytics, Experimentation & Measurement
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Define success metrics and measurement strategies for AI/ML capabilities.
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Design experiments and analyses to evaluate model performance, product impact, and user outcomes.
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Use data to identify opportunities, validate assumptions, and guide product and engineering decisions.
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Create clear narratives from complex data science findings and communicate recommendations to technical and non-technical stakeholders.
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Support ongoing monitoring and improvement of deployed AI/ML capabilities.
Cross-Functional Collaboration
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Partner with Product Management, Engineering, Architecture, UX, Analytics, Platform, Security, and business stakeholders to deliver high-impact AI and data science solutions.
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Translate customer, user, and business needs into scalable data science solutions, AI-enabled applications, and measurable delivery plans.
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Work closely with engineering teams to productionize models, applications, data pipelines, evaluation workflows, and AI-enabled product features.
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Mentor data scientists and engineers, provide technical guidance, and contribute to knowledge sharing across the team.
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Influence technical direction across multiple initiatives without direct people-management responsibility.
Technical Skills Required
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Strong generalist data science background across machine learning, NLP, analytics, experimentation, applied AI, application development, and cloud-based solution delivery.
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Hands‑on experience designing, building, evaluating, and improving machine learning, AI‑based, or data‑driven applications.
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Ability to build applications, prototypes, APIs, backend services, internal tools, automation workflows, or production‑oriented AI capabilities.
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Strong AWS skills, including hands‑on experience with services such as S3, Lambda, IAM, API Gateway, CloudWatch, Step Functions, Glue, SageMaker, Bedrock, ECS, ECR, or similar AWS services.
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Experience designing cloud‑native solutions with attention to security, scalability, reliability, observability, cost, and operational readiness.
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Experience with generative AI, LLM‑based applications, prompt evaluation, retrieval‑augmented generation, NLP, or related applied AI techniques.
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Strong proficiency in Python and common data science / machine learning frameworks.
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Experience with application development frameworks, APIs, backend services, or web application patterns.
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Strong proficiency in SQL and experience working with large, complex datasets.
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Strong understanding of statistical analysis, experimentation, model validation, evaluation design, and performance measurement.
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Experience defining AI/ML quality metrics and translating model performance into business or product outcomes.
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Experience working with engineering teams to move AI/ML solutions into production environments.
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Ability to lead technical workstreams, coordinate execution, manage dependencies, and drive delivery without being a direct people manager.
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Ability to operate independently in ambiguous problem spaces and create structure for broader team execution.
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Strong communication skills with the ability to explain complex technical topics to senior stakeholders, product teams, and engineering teams.
Good to Have
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Experience in customer support/operations related domains.
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Experience building full‑stack or backend applications that integrate AI/ML capabilities.
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Experience with React, Streamlit, Flask, FastAPI, Node.js, or similar application development frameworks.
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Experience with AWS Bedrock, including Agentcore, Redshift, OpenSearch, Lambda, ECS, EKS, or serverless architectures.
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Experience with search, summarization, classification, extraction, entity recognition, ranking, recommendation systems, or document intelligence.
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Experience building evaluation frameworks for generative AI, NLP, or retrieval‑augmented generation systems.
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Experience with cloud-based ML platforms, MLOps, CI/CD, model monitoring, observability, or production AI systems.
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Experience with Databricks, AWS, data pipelines, feature engineering, or large-scale data processing.
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Experience mentoring data scientists or engineers in a senior individual contributor capacity.
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Experience influencing product and technical strategy across cross‑functional teams.
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Experience helping teams define delivery plans, manage technical priorities, and improve execution discipline.
Education Requirements
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Bachelor’s degree in Computer Science, Data Science, Statistics, Mathematics, Engineering, Information Systems, Software Engineering, or a related technical field required.
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Master’s degree or PhD in Data Science, Computer Science, Machine Learning, Statistics, Applied Mathematics, Engineering, or a related technical field preferred.
Why Join LexisNexis?
You will work on impactful AI and data science solutions that support mission‑critical product experiences and customer workflows. You’ll be part of a global organization that values innovation, collaboration, responsible AI, and continuous improvement, while providing opportunities to grow technically, lead complex initiatives, and make a meaningful impact across teams.
This role provides an opportunity to operate as a senior technical leader, shape AI delivery practices, build AI‑enabled applications, and help guide the team’s work while remaining a hands‑on individual contributor.
U.S. National Base Pay Range: $118,300 - $219,800. Geographic differentials may apply in some locations to better reflect local market rates.
This job is eligible for an annual incentive bonus.
We know your well‑being and happiness are key to a long and successful career. We are delighted to offer country specific benefits. Click here ( to access benefits specific to your location.
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We are an equal opportunity employer: qualified applicants are considered for and treated during employment without regard to race, color, creed, religion, sex, national origin, citizenship status, disability status, protected veteran status, age, marital status, sexual orientation, gender identity, genetic information, or any other characteristic protected by law.
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RELX is a global provider of information-based analytics and decision tools for professional and business customers, enabling them to make better decisions, get better results and be more productive.
Our purpose is to benefit society by developing products that help researchers advance scientific knowledge; doctors and nurses improve the lives of patients; lawyers promote the rule of law and achieve justice and fair results for their clients; businesses and governments prevent fraud; consumers access financial services and get fair prices on insurance; and customers learn about markets and complete transactions.
Our purpose guides our actions beyond the products that we develop. It defines us as a company. Every day across RELX our employees are inspired to undertake initiatives that make unique contributions to society and the communities in which we operate.
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