Senior Machine Learning Engineer

FanDuel

$138K — $181K *
Consumer Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 5-7 years developing software in Python, Java, or similar programming languages
  • 1+ year of experience with vector and semantic search for production ML
  • 1+ year integrating ML signals into typeahead systems
  • 1+ year deploying ML and GenAI/LLM models at scale
  • Hands-on with ML frameworks like TensorFlow, PyTorch, and libraries for LLMs
  • 4+ years building scalable software architectures for ML applications
  • Experience in cloud environments (AWS, GCP, Azure) and relevant tools like Spark and Kafka

Responsibilities

  • Design and implement an intelligent search system for enhanced user experience
  • Develop scalable serving systems for ML and GenAI/LLM models
  • Create features for ML modeling lifecycle automation
  • Ensure data security and compliance with regulations like GDPR
  • Establish data governance frameworks and testing measures
  • Foster an inclusive culture of excellence and continuous growth
  • Collaborate and share best practices in automation and data quality

Benefits

  • Opportunities for career advancement based on skills as an individual contributor or manager
  • Inclusive workplace culture supporting personal growth
  • Focus on employee well-being alongside professional development
  • Access to collaborative learning environments and peer support
  • High emphasis on continuous integration and delivery processes
Full Job Description
THE POSITIONOur roster has an opening with your name on it

At FanDuel, data is the heartbeat of our organization. As a Machine Learning Engineer at FanDuel, you will help us unlock the full potential of our vast amounts of real-time and relational data. You will be asked to provide our business with insight and our customers with world-class personalized experiences. Every click our users make, every bet, every touchdown, every fumble, and every play is fair game for us to turn into a stream of knowledge. Your expertise will be used here to make better and faster decisions - outpacing our competition.

Collaboration is at the core of your role. You'll be the linchpin between engineering teams working downstream to build out our online application and upstream to land necessary data for feature engineering. You'll also be working with Data Scientists and Analysts to productionize, analyze, and validate AI powered insights. You will be asked to help organize, model, and present our data as a coherent product and offer it to our stakeholders, providing a common information framework that allows FanDuel to intelligently react to what is happening on the field and in the marketplace.

We are looking for Senior Machine Learning Engineer who may be looking to make the move to a big data environment. If this describes you, read on - we want to hear from you!

THE GAME PLAN
Everyone on our team has a part to play
  • Designing and implementing intelligent search system incorporating typeahead search, vector search and ML personalization model signals to optimize relevance and user experience
  • Contributing to the design and development of scalable serving systems for ML and GenAI/LLM models
  • Developing platform features and capabilities (e.g. CLI, SDK, Infra Automation, Platform Applications) for streamlining ML Model and GenAI/LLM Application development and deployment lifecycle
  • Business intelligence tools (e.g., Tableau, Knime, Looker)
  • Data security and privacy (e.g. GDPR, CPP)
  • Data governance and data testing frameworks
  • Continuous integration and delivery of production data products
  • An inclusive culture that expects excellence and priorities your growth as an engineer and your well-being as a person
  • Advance your career within well-defined, skill-based tracks, either as an individual contributor or as a manager - both providing equal opportunities for compensation and advancement
  • Collaborating with peers and sharing best practices in system reliability, automation, and data quality

ML engineering is a rapidly changing field - most of all, we're looking for someone who enjoys experimenting, keeping their finger on the pulse of current data engineering tools, and always thinking about how to do something better.

THE STATS
What we're looking for in our next teammate
  • 5-7+ years of relevant experience developing code in one or more core programming languages (Python, Java, etc.)
  • 1+ Years of Experience implementing vector search, semantic search, or embedding-based retrieval systems for production ML or AI applications
  • 1+ Years of Experience working with typeahead / autocomplete systems and integrating ML signals into query understanding or ranking workflows
  • 1+ Years of Experience combining outputs from multiple retrieval systems (e.g., vector search + typeahead + personalization models) to improve relevance
  • 1+ Years of experience in deploying ML and GenAI/LLM models under the constraints of scalability, correctness, and maintainability.
  • Hands on experience with ML frameworks and libraries (Scikit-learn, Pytorch, Tensorflow, LightGBM, Keras, MLFlow etc.) and familiarity with LLM-specific frameworks (e.g., LangChain, Hugging Face Transformers, etc).
  • Hands on experience with one or more ML and GenAI/LLM cloud services (Amazon SageMaker, Amazon Bedrock, Databricks Mosaic AI, Seldon, Arize, etc)
  • 4+ Years of experience designing and building various software architecture, with some emphasis on scalable architectures supporting both traditional ML and advanced LLM workflows.
  • Deep understanding and knowledge of data structures, distributed computing, and software engineering principles
  • 3+ Years of experience demonstrating technical leadership working with teams, owning projects, defining, and setting technical direction for projects.
  • Experience with one or more relevant tools (Flink, Spark, Sqoop, Flume, Kafka, Amazon Kinesis, Terraform, Airflow)
  • Ability to share findings in easy to consume formats, whether that is through dashboards or data modeling.
  • Conduct regular design process reviews and ensure development standards within the team.
  • Working with leadership to drive adoption of ML and GenAI/LLM solutions to product engineering teams.
  • Experience working in a cloud environment such as AWS, GCP, Azure.
  • Experience with Databricks is a plus, their unity catalog, another plus.
  • Designing and building data pipelines for production level ML and GenAI/LLM infrastructure.
  • Experience with vector databases to efficiently manage and retrieve embeddings for LLM applications, enabling high-performance similarity search and retrieval-augmented generation (RAG) workflows is a plus
  • Motivate junior engineers on best practices and latest industry design patterns.

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