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Major League Soccer

Principal AI/ML Engineer, Semantic Data

new york, NY

Check who can apply and the requirements below before continuing.

About this opportunity

Major League Soccer lists this Principal AI/ML Engineer, Semantic Data opportunity in new york, New York. Review the employer’s description below for duties, qualifications and application requirements.

Job description

Major League Soccer is building advanced AI and data platforms to power fan intelligence, personalization, and data-driven decisioning across the organization.

The Principal AI/ML Engineer, Semantic Data will design and build the semantic intelligence layer that enables consistent understanding of fan data, business concepts, and operational workflows across MLS systems.

This role combines semantic data systems with applied LLM engineering to build grounded, production-grade AI capabilities.

This is a systems engineering role responsible for building and scaling real-world AI infrastructure, including knowledge graphs, retrieval systems, and LLM-powered applications.

AI & Knowledge Systems Development

Design and implement embedding pipelines across fan data, content, metadata, and behavioral signals

Build metadata and enrichment systems that normalize and structure enterprise data for AI use

Develop knowledge bases and retrieval systems using vector databases and hybrid search architectures

Create context assembly pipelines combining structured data, documents, APIs, and historical outputs

Enable AI systems to operate on unified semantic representations rather than raw data

Semantic Layer & Knowledge Graphs

Architect and manage knowledge graphs representing fan, content, and business entity relationships

Define and maintain a semantic layer standardizing metrics, features, and business concepts

Design ontologies, taxonomies, and entity models for fan behavior and identity

Implement graph-based reasoning and enrichment workflows

Ensure semantic consistency across analytics, ML, and operational systems

LLM & Applied AI Systems

Design and build retrieval-augmented generation (RAG) systems grounded in semantic data

Integrate LLMs for reasoning over structured and unstructured data

Develop pipelines translating natural language into structured outputs such as queries and analytical tasks

Build and optimize context pipelines improving LLM grounding and factual accuracy

Evaluate and integrate open-weight models for domain-specific reasoning

Fine-tune or adapt models using parameter-efficient techniques

Support deployment of LLM systems in private or on-prem GPU environments

Optimize inference workflows for latency, cost, and scalability

Enable LLM-driven workflows that reason over semantic data and retrieval systems

Platform & Infrastructure

Build scalable, production-grade services and APIs for semantic and AI systems

Work with vector and graph databases to support retrieval and reasoning

Integrate structured data, documents, APIs, and model outputs

Partner with data engineering on batch and real-time pipelines

Ensure systems meet performance and reliability requirements

Governance, Evaluation & Reliability

Design evaluation frameworks for retrieval quality and LLM output correctness

Monitor system performance, relevance, and model behavior

Establish guardrails for explainability, traceability, and data attribution

Ensure safe and reliable generation of structured outputs

Mitigate risks related to bias, data leakage, and inconsistencies

Cross-Functional Collaboration

Collaborate with product, analytics, and engineering teams on AI use cases

Translate business problems into systems combining semantic data and LLM reasoning

Partner with ML teams to improve model performance through better grounding

Mentor engineers and establish best practices

Master’s degree or higher in computer science, engineering, or related field, or equivalent experience

8-10 years of experience in ML engineering, data systems, or applied AI

Strong expertise in Python, SQL, and production software engineering

Deep experience with semantic data modeling, ontologies, and entity resolution

Hands-on experience with embeddings, vector search, and retrieval systems

Experience building and deploying LLM-powered systems including RAG

Experience building production-grade AI systems at scale

Strong understanding of distributed systems and data architecture

Preferred Qualifications

Experience with knowledge graphs and graph databases

Experience designing semantic layers or feature stores

Experience with open-weight LLMs and model adaptation

Familiarity with on-prem or private GPU deployments

Experience with modern data platforms (AWS, Snowflake, Databricks)

Background in marketing analytics, personalization, or customer data platforms

Total Rewards

Major League Soccer offers a competitive starting base salary of $235,000-$260,000, based on individual qualifications, market financials, and operational business needs. We are committed to providing a Total Rewards package that attracts, supports, engages, and retains talent. Our benefits package includes comprehensive medical, dental, and vision coverage, a $500 wellness reimbursement, and generous Holiday and PTO schedule to promote work-life balance. We also prioritize career and professional development, offering on-the-job training, feedback, and ongoing educational opportunities.

Major League Soccer believes in the value of in-person collaboration to support teamwork, creativity, and connection. Employees in this role are expected to work a four (4) day in-office schedule, with the flexibility to work remotely one (1) day each week, based on business and department needs.

Major League Soccer is an equal opportunity employer. Employment decisions are made without regard to race, color, religion, sex, sexual orientation, gender identity or expression, pregnancy, age, national origin, disability, genetic information, protected veteran status, or any other characteristic protected by applicable federal, state, or local law.

Major League Soccer is committed to providing reasonable accommodations to individuals with disabilities throughout the application and hiring process, as well as during employment. Applicants who require an accommodation may contact Human Resources to request assistance.

Join our team and help support the growth and success of Major League Soccer.

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Worksite address

new york, NY, 10261, US

Who can apply

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