Machine Learning Engineer II

$118,000 - $158,200/Yr

Disney - New York, NY

posted 3 days ago

Full-time - Mid Level
New York, NY
Motion Picture and Sound Recording Industries

About the position

The position at Disney Entertainment & ESPN Technology focuses on developing and optimizing recommendation and personalization algorithms for Disney's streaming services, including Disney+ and Hulu. As an Individual Contributor, the role involves collaborating with various teams to apply machine learning methods, manage stakeholder expectations, and drive product personalization goals while ensuring the algorithms meet strategic objectives.

Responsibilities

  • Utilize cutting edge machine learning methods to develop and implement algorithms for personalization, recommendation, and other predictive systems.
  • Maintain algorithms deployed to production and explain methodologies to technical and non-technical teams.
  • Develop and maintain ETL pipelines using orchestration tools such as Airflow and Jenkins.
  • Deploy scalable streaming and batch data pipelines to support petabyte scale datasets.
  • Maintain existing and establish new algorithm development, testing, and deployment standards.
  • Identify and define new personalization opportunities and collaborate with other data teams to improve data collection, experimentation, and analysis.

Requirements

  • 3+ years of experience developing machine learning models, performing large-scale data analysis, and/or data engineering experience.
  • Bachelor's degree in Computer Science, Information Systems, Software, Electrical or Electronics Engineering, or comparable field of study, and/or equivalent work experience.
  • 3+ years writing production-level, scalable code (e.g. Python, Scala).
  • 3+ years of experience developing algorithms for deployment to production systems.
  • In-depth understanding of modern machine learning (e.g. deep learning methods), models, and their mathematical underpinnings.
  • Experience deploying and maintaining pipelines (AWS, Docker, Airflow) and in engineering big-data solutions using technologies like Databricks, S3, and Spark.
  • Ability to gauge the complexity of machine learning problems and a willingness to execute simple approaches for quick, effective solutions as appropriate.
  • Strong written and verbal communication skills.

Nice-to-haves

  • MS or PhD in statistics, math, computer science, or related quantitative field.
  • Production experience with developing content recommendation algorithms at scale.
  • Experience building and deploying full stack ML pipelines: data extraction, data mining, model training, feature development, testing, and deployment.
  • Familiar with metadata management, data lineage, and principles of data governance.

Benefits

  • Medical benefits including health insurance coverage.
  • Financial benefits including a bonus and/or long-term incentive units.
  • Flexible working arrangements depending on the level and position offered.
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