Lead Machine Learning Engineer

DNU USA - WA - 1215 4th Ave

The Walt Disney Company

The mission of The Walt Disney Company is to be one of the world's leading producers and providers of entertainment and information.

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Job Posting Title:

Lead Machine Learning Engineer

Req ID:

10100865

Job Description:

On any given day at Disney Entertainment & ESPN Technology, we’re reimagining ways to create magical viewing experiences for the world’s most beloved stories while also transforming Disney’s media business for the future. Whether that’s evolving our streaming and digital products in new and immersive ways, powering worldwide advertising and distribution to maximize flexibility and efficiency, or delivering Disney’s unmatched entertainment and sports content, every day is a moment to make a difference to partners and to hundreds of millions of people around the world.

A few reasons why we think you’d love working for Disney Entertainment & ESPN Technology

  • Building the future of Disney’s media business: DE&E Technologists are designing and building the infrastructure that will power Disney’s media, advertising, and distribution businesses for years to come.
  • Reach & Scale: The products and platforms this group builds and operates delight millions of consumers every minute of every day – from Disney+ and Hulu, to ABC News and Entertainment, to ESPN and ESPN+, and much more.
  • Innovation: We develop and execute groundbreaking products and techniques that shape industry norms and enhance how audiences experience sports, entertainment & news.

Our team is responsible for developing, implementing, and maintaining Hulu's recommendation and personalization algorithms. As part of this team, you will collaborate with Engineering, Product, and Data teams to apply machine learning techniques to achieve strategic personalization goals. This is an Individual Contributor role in content recommendations. You will be expected to lead recommendation and personalization algorithm research, development, implementation, and optimization for product areas, and to coordinate requirements and manage stakeholder expectations with Product, Engineering, and Editorial teams. As an IC, you will also be responsible for helping to set the roadmap for algorithmic work — not only for how to approach product requests for new recommendation features, but for helping to drive larger company objectives in the areas of personalization and content recommendation.

Responsibilities:

  • Algorithm Development and Maintenance: Utilize cutting edge machine learning methods to develop algorithms for personalization, recommendation, and other predictive systems and bring it to large-scale real-time recommendation pipeline; maintain algorithms deployed to production and be the point person in explaining methodologies to technical and non-technical teams
  • Feature Engineering and Optimization: Develop and maintain ETL pipelines using orchestration tools; deploy scalable streaming and batch data pipelines to support petabyte scale datasets
  • Development Best Practices: Maintain existing and establish new algorithm development, testing, and deployment standards
  • Collaborate with product and business stakeholders: Identify and define new personalization opportunities with product team and work with data teams to improve how we do data collection, experimentation and analysis
  • Strong written and verbal communication skills

Basic Qualification:

  • Bachelor’s degree in Computer Science, Information Systems, Software, Electrical or Electronics Engineering, or comparable field of study, and/or equivalent work experience
  • In-depth understanding of deep learning technology in recommendation system or NLP fields
  • Proficiency in at least one of the following deep learning framework, tensorflow, pytorch
  • Experience deploying and maintaining pipelines (AWS, Docker, Airflow) and in engineering big-data solutions using technologies like Databricks, S3, and Spark
  • Experience building and deploying full stack ML pipelines: data extraction, data mining, model training, feature development, testing, and deployment
  • Ability to articulate the usage and behavior of models and algorithms to both technical and non-technical audiences
  • 7+ years of experience in developing highly scalable machine learning products
  • 7+ years writing production-level, scalable Python codes

Preferred qualification:

  • MS or PhD in statistics, math, computer science, or related quantitative field
  • Familiarity with Java and/or Scala programming languages
  • Production experience with developing content recommendation algorithms at scale and familiar with metadata management, data lineage, and principles of data governance
  • Building streaming data pipelines using Kafka, Spark, or Flink

#DISNEYTECH

The hiring range for this position in Santa Monica, CA is $172,300-$231,100 per year. The base pay actually offered will take into account internal equity and also may vary depending on the candidate’s geographic region, job-related knowledge, skills, and experience among other factors. A bonus and/or long-term incentive units may be provided as part of the compensation package, in addition to the full range of medical, financial, and/or other benefits, dependent on the level and position offered

Job Posting Segment:

Product & Data Engineering

Job Posting Primary Business:

PDE - Engagement Experiences & Platforms

Primary Job Posting Category:

Machine Learning

Employment Type:

Full time

Primary City, State, Region, Postal Code:

Seattle, WA, USA

Alternate City, State, Region, Postal Code:

DNU_USA - CA - 10351 Santa Monica Blvd, USA - CA - Market St

Date Posted:

2024-09-30
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Tags: Airflow AWS Computer Science Databricks Data governance Data Mining Data pipelines Deep Learning Docker Engineering ETL Feature engineering Flink Java Kafka Machine Learning Mathematics Model training NLP PhD Pipelines Python PyTorch Research Scala Spark Statistics Streaming TensorFlow Testing

Perks/benefits: Career development Equity / stock options Salary bonus

Region: North America
Country: United States

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