Senior Machine Learning Engineer
工作概要:
Disney Entertainment & ESPN Technology
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.
Product Engineering is a unified team responsible for the engineering of Disney Entertainment & ESPN digital and streaming products and platforms. This includes product engineering, media engineering, quality assurance, engineering behind personalization, commerce, lifecycle, and identity.
Job Summary:
ESPN is investing in large‑scale data infrastructure and real‑time processing platforms that power next‑generation personalization and live sports experiences. As a Machine Learning Engineer, you will focus on building and operating distributed data and ML infrastructure that supports high‑throughput, low‑latency data processing and real‑time ML use cases.
In this role, you will work closely with senior MLEs, data engineers, platform/SRE, and product teams to develop streaming data pipelines, feature computation systems, and ML‑adjacent services that operate reliably at scale. The role emphasizes hands‑on engineering, strong fundamentals in distributed systems, and practical experience operating production data infrastructure.
Responsibilities and Duties of the Role:
1) Large-Scale Data Processing & Streaming Systems
Build and maintain high‑throughput batch and streaming data pipelines to support ML, analytics, and real‑time decisioning use cases.
Implement data ingestion, enrichment, aggregation, and transformation workflows using modern distributed data frameworks.
Ensure pipelines meet latency, reliability, and data quality requirements for downstream ML and product teams.
2) Real‑Time Data & Feature Infrastructure
Develop and operate systems that support real‑time feature computation and delivery for online ML services.
Work with feature stores and event‑driven architectures to ensure consistency between offline and online data.
Improve data freshness, schema evolution, and backward compatibility in streaming environments.
3) ML-Adjacent infrastructure & Platform Engineering
Build and operate ML‑adjacent services such as inference inputs, feature APIs, and data access layers.
Contribute to scalable service patterns including autoscaling, rollout strategies, and resiliency mechanisms.
Partner with platform/SRE teams to improve system availability, performance, and cost efficiency.
4) Reliability, Observability & Operations
Instrument data and ML infrastructure with metrics, logging, and alerting to support production operations.
Participate in on‑call rotations and incident response for data and ML platforms.
Identify and remediate data pipeline failures, performance regressions, and operational risks.
3) Collaboration & Engineering Execution
Collaborate with applied ML and data science teams to enable production ML workflows through reliable data systems.
Participate in design reviews, code reviews, and technical discussions.
Follow established platform standards and contribute incremental improvements over time
Required Education, Experience/Skills/Training:
Basic Qualification:
Experience building and operating large‑scale data or ML systems in production.
Strong fundamentals in distributed systems and data processing architectures.
Hands‑on experience with streaming and batch data technologies (e.g., Kafka, Kinesis, Spark, Flink, or equivalent).
Proficiency in Python and working knowledge of Java, Scala, Go, or C++.
Experience operating systems in cloud‑native environments (AWS, containers, Kubernetes, IaC tools).
Familiarity with observability and operational best practices for production systems.
Strong collaboration skills and ability to work effectively across engineering and data teams
Preferred qualification:
Experience supporting real‑time personalization, recommendation, or analytics systems.
Familiarity with feature stores, event‑driven architectures, and real‑time ML pipelines.
Exposure to ML infrastructure concepts such as inference pipelines, data validation, and model lifecycle tooling.
Experience optimizing data systems for latency, throughput, and cost efficiency.
Understanding of experimentation platforms and data instrumentation for online systems.
Experience with:
5+ years of industry experience building data‑intensive or ML‑adjacent systems in production
Required Education
Bachelor’s or Master’s degree in Computer Science, Data Engineering, Machine Learning, or a related field
The hiring range for this position in New York, NY is $148,700 - $199,400 per year and in Glendale, CA is $141,900 - $190,300. 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.
關於Disney Entertainment and ESPN Product & Technology:
在Disney Entertainment and ESPN Product & Technology,我們結合想像力與創新,以重新想像人們體驗和參與世上最受歡迎故事和產品的方式。我們的工作內容廣泛,且精深細密。我們創造令人驚豔的體驗、改變媒體的未來,並打造產品和平台,讓世界各地的人們都能與自己喜愛的故事和體育活動緊密相連。
Disney結合世界級技術與獨特創意,因而與眾不同。這是我們過去、現在和未來的核心。我們是故事敍述者和創新者。創作者和創建者。表演者和工程師。
關於 The Walt Disney Company:
Walt Disney Company 連同其子公司和聯營公司,是領先的多元化國際家庭娛樂和媒體企業,其業務主要涉及三個範疇:Disney Entertainment、ESPN 及 Disney Experiences。Disney 在 1920 年代的起步之初,只是一間卡通工作室,至今已成為娛樂界的翹楚,並昂然堅守傳承,繼續為家庭中每位成員創造世界一流的故事與體驗。Disney 的故事、人物與體驗傳遍世界每個角落,深入人心。我們在 40 多個國家/地區營運業務,僱員及演藝人員攜手協力,創造全球和當地人們都珍愛的娛樂體驗。
這個職位隸屬於 Disney Entertainment & Sports LLC,其所屬的業務部門是 Disney Entertainment and ESPN Product & Technology。
Disney Entertainment & Sports LLC 是提供平等就業機會的僱主。求職者都會獲得聘僱考量的機會,不分種族、宗教、膚色、生理性別、性傾向、社會性別、性別認同、性別表達、原國籍、血統、年齡、婚姻狀態、軍人或退伍軍人身份、醫療狀況、遺傳資訊或殘疾狀況、或者聯邦、州級或地方法律所禁止的其他任何基本特徵。Disney 提倡讓所有人的想法和決策都有助我們發展、創新、創造最好故事的商業環境,並與瞬息萬變的世界息息相關。
就業申請的殘疾便利安排
The Walt Disney Company and its Affiliated Companies are Equal Employment Opportunity employers and welcome all job seekers including individuals with disabilities and veterans with disabilities. If you have a disability and believe you need a reasonable accommodation in order to search for a job opening or apply for a position, visit the Disney candidate disability accommodations FAQs. We will only respond to those requests that are related to the accessibility of the online application system due to a disability.
遇到技術問題?查看常見問題以尋求協助。
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