Full Stack Engineer MTS 2 – AIRI

Posted 5 Days Ago
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Toronto, ON, CAN
In-Office
Senior level
eCommerce • Retail
The Role
Build and lead design, implementation, and production deployment of Generative AI and LLM-powered systems. Own backend services, model integration, RAG/agent architectures, evaluation pipelines, monitoring, and reusable GenAI platform components while mentoring engineers and partnering with cross-functional teams.
Summary Generated by Built In

At eBay, we're more than a global ecommerce leader — we’re changing the way the world shops and sells. Our platform empowers millions of buyers and sellers in more than 190 markets around the world. We’re committed to pushing boundaries and leaving our mark as we reinvent the future of ecommerce for enthusiasts.

Our customers are our compass, authenticity thrives, bold ideas are welcome, and everyone can bring their unique selves to work — every day. We're in this together, sustaining the future of our customers, our company, and our planet.

Join a team of passionate thinkers, innovators, and dreamers — and help us connect people and build communities to create economic opportunity for all.

Full stack Engineer, AI Research, Innovation (MTS 2)

eBay is seeking a highly skilled, hands-on Full Stack Engineer (MTS 2) to join our AIRI division. This is an opportunity to build strategically important AI systems that power intelligent experiences at one of the world’s largest ecommerce platforms.

This is an individual contributor role for a strong senior engineer and technical leader who can own major AI engineering workstreams from design through production. We are looking for someone with strong backend depth, sound architectural judgment, and a full-stack mindset: someone who can work across the stack and is able or willing to contribute to front-end experiences as needed, without requiring expertise in any specific front-end framework.

In this role, you will provide technical leadership through system design, code reviews, design reviews, technical planning, mentoring, and hands-on delivery. You will work closely with Product, Research, Data Engineering, and Software Engineering teams to translate ambiguous ideas into practical, scalable, production-ready AI systems.


About the team and the role:  

As a Full Stack AI Engineer (MTS 2) , you will work across the full AI lifecycle, including experimentation, prototyping, evaluation, production deployment, monitoring, and continuous improvement.

Your work will span Generative AI systems, LLM-powered applications, intelligent agents, conversational AI, retrieval-augmented generation, and agent-based architectures. You will be expected to own significant parts of the system, make sound technical tradeoffs, and help other engineers deliver high-quality AI solutions. 

What you will accomplish:

  • Design, develop, and optimize scalable AI systems using Generative AI, LLMs, retrieval-augmented generation, and agent-based architectures.

  • Lead technical execution for major AI workstreams, services, or platform components from design through production deployment.

  • Build agent-led user experiences and backend systems that leverage task decomposition, memory, tool use, planning, retrieval, and orchestration.

  • Partner with Product, Research, Data Engineering, and Software Engineering teams to translate business and user needs into practical AI system designs.

  • Own architectural decisions for assigned systems or subsystems, ensuring reliability, maintainability, scalability, cost efficiency, and production readiness.

  • Contribute directly to implementation across backend services, model integration layers, APIs, orchestration services, evaluation pipelines, and observability tooling.

  • Lead and participate in design reviews, code reviews, technical planning discussions, and operational readiness reviews.

  • Help advance eBay’s internal GenAI platform through reusable components, APIs, frameworks, evaluation patterns, and engineering guidelines.

  • Define and implement approaches for AI system evaluation, including quality measurement, experimentation, regression testing, model behavior analysis, and production feedback loops.

  • Monitor and optimize AI systems in production for latency, quality, scalability, reliability, cost, and responsible AI use.

  • Break down ambiguous technical problems into clear implementation plans, milestones, risks, and tradeoffs.

  • Mentor engineers through hands-on technical guidance, implementation support, code reviews, and collaborative problem-solving.

  • Stay current on advances in LLMs, AI agents, retrieval systems, machine learning infrastructure, and emerging AI tooling, applying a practical lens to production use.

  • Contribute to continuous improvement across design, implementation, deployment, monitoring, and operational processes.


What you will bring: 

  • 8+ years of experience in software engineering, machine learning engineering, AI engineering, or related technical roles.

  • 4+ years of focused experience developing, deploying, and operating AI-centric or ML-powered systems in production environments.

  • 1–2+ years of experience leading technical initiatives, owning major engineering workstreams, mentoring engineers, or providing technical direction.

  • Hands-on experience building Generative AI, LLM, retrieval-augmented generation, conversational AI, or agent-led systems.

  • Experience taking AI-powered features or services from prototype to production with attention to maintainability, scalability, performance, reliability, and user impact.

  • Strong hands-on engineering skills, with the ability to contribute directly to complex system design and implementation.

  • Strong programming skills in Java or similar JVM languages, with working proficiency in Python and familiarity with ML frameworks such as PyTorch, Transformers, and scikit-learn.

  • Experience designing and operating production-grade backend systems, distributed services, APIs, or AI platforms that serve real-world user traffic.

  • Full-stack mindset with the ability or willingness to contribute to front-end development using modern web technologies; expertise in a specific front-end framework is not required.

  • Strong understanding of AI system evaluation, including offline evaluation, online experimentation, model behavior analysis, quality metrics, and feedback loops.

  • Hands-on experience with:

    • Spring Framework or Spring Boot

    • Docker and Kubernetes

    • Large-scale data technologies such as Hadoop or Spark

    • Distributed systems and scalable backend services

    • Production monitoring, observability, and performance optimization

    • CI/CD, testing, deployment, and operational support practices

  • Ability to evaluate technical tradeoffs and communicate complex AI concepts clearly to technical and non-technical collaborators.


Bonus Qualifications


  • Experience with C++ or CUDA for performance-critical AI or ML components.

  • Familiarity with streaming data systems such as Kafka, Flink, Beam, or Storm.

  • Experience with vector databases, embeddings, semantic search, ranking systems, knowledge grounding, and retrieval-augmented generation.

  • Knowledge of agent orchestration frameworks, tool-use patterns, workflow automation, multi-modal models, or multi-agent systems.

  • Experience building internal AI platforms, reusable AI services, developer tools, or shared ML infrastructure.

  • Experience supporting high-traffic ecommerce, marketplace, search, personalization, recommendations, trust, ads, or customer-service AI systems.

  • Experience improving engineering practices through reusable patterns, documentation, testing frameworks, evaluation harnesses, or operational playbooks.

Additional Details

This job posting relates to an existing vacancy within eBay.

eBay is an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, national origin, sex, sexual orientation, gender identity, and disability, or other legally protected status. If you have a need that requires accommodation, please contact us at [email protected]. We will make every effort to respond to your request for accommodation as soon as possible. View our accessibility statement to learn more about eBay's commitment to ensuring digital accessibility.


We use cookies to enhance your experience and may use AI tools for administrative tasks in the hiring process. To learn how we handle your personal data and use AI responsibly, please visit our Talent Privacy Notice, Privacy Center, and AI Hiring Guidelines.

Skills Required

  • 8+ years of experience in software, ML, or AI engineering
  • 4+ years developing, deploying, and operating AI/ML systems in production
  • 1-2+ years leading technical initiatives and mentoring engineers
  • Hands-on experience building Generative AI, LLMs, RAG, conversational AI, or agent-led systems
  • Experience taking AI features from prototype to production with focus on reliability and scalability
  • Strong programming skills in Java or similar JVM languages
  • Working proficiency in Python
  • Familiarity with ML frameworks such as PyTorch, Transformers, and scikit-learn
  • Experience designing and operating production-grade backend systems, distributed services, APIs, or AI platforms
  • Full-stack mindset with ability or willingness to contribute to front-end development
  • Strong understanding of AI system evaluation, experimentation, and feedback loops
  • Hands-on experience with Spring Framework or Spring Boot
  • Hands-on experience with Docker and Kubernetes
  • Experience with large-scale data technologies such as Hadoop or Spark
  • Production monitoring, observability, performance optimization experience
  • CI/CD, testing, deployment, and operational support practices
  • Experience with C++ or CUDA for performance-critical ML components
  • Familiarity with streaming systems (Kafka, Flink, Beam, Storm)
  • Experience with vector databases, embeddings, semantic search, and ranking systems
  • Knowledge of agent orchestration frameworks, multi-agent or multi-modal systems
  • Experience building internal AI platforms, reusable AI services, or supporting high-traffic ecommerce AI

eBay Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about eBay and has not been reviewed or approved by eBay.

  • Healthcare Strength Medical, dental, and vision coverage begin on the date of hire, complemented by mental health resources, an EAP, disability coverage, FSAs, and wellness initiatives.
  • Leave & Time Off Breadth A robust mix of PTO, paid holidays, flexible work styles, parental leave, and a four‑week paid sabbatical after five years supports work‑life balance.
  • Equity Value & Accessibility Total compensation commonly includes stock components, with access to an employee stock purchase plan at a discount and stock awards enhancing overall packages.

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The Company
HQ: San Jose, CA
26,035 Employees

What We Do

eBay Inc. is a global commerce leader that connects millions of buyers and sellers around the world. We exist to enable economic opportunity for individuals, entrepreneurs, businesses and organizations of all sizes. Our portfolio of brands includes eBay Marketplace and eBay Classifieds Group, operating in 190 markets around the world. We offer sellers the ability to grow a business with little barrier to entry regardless of size, background or geographic location. We never compete with our sellers. We win when our sellers succeed. Buyers who shop on our Marketplace and Classifieds platforms enjoy a highly personalized experience with an unparalleled selection at great value.

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