Description
As part of the Data Engineering Platform (DEP) team, you will help design and build the core platform capabilities that teams across Apple rely on every day. You will collaborate closely with experienced engineers, contribute to scalable backend services that integrate big data technologies with microservices, and help shape intuitive developer tools and automation systems that reduce friction and drive productivity. This is a great opportunity for an engineer who wants to grow fast, work on hard problems, and do the best work of their life at Apple.
Minimum Qualifications
Bachelor's degree in Computer Science, Software Engineering, or a related technical field 3+ years of software engineering experience, with a solid foundation in building and shipping production-quality code Strong proficiency in at least one programming language such as Python, Java, Go, or Scala Understanding of data engineering fundamentals including data pipelines, batch processing, and real-time data streaming Hands-on experience designing and building backend services and APIs Working knowledge of distributed systems and big data technologies such as Spark, Kafka, or Hadoop Exposure to AI-driven development practices with a genuine enthusiasm for leveraging AI tools to improve engineering productivity and code quality A curious, self-driven mindset with a strong interest in how AI is shaping the future of software and data engineering Strong problem-solving ability with a collaborative approach to working across teams Clear and concise communicator who can translate technical concepts for diverse audiences
Preferred Qualifications
Hands-on experience with big data technologies such as Apache Spark, Kafka, Flink, or Airflow Some exposure to microservices architecture and cloud platforms such as AWS, GCP, or Azure Familiarity with data orchestration frameworks and pipeline management tools such as Airflow or Prefect Basic experience with containerization tools such as Docker and Kubernetes Awareness of data quality, observability, and monitoring concepts in data pipelines Some exposure to developer tooling, internal platforms, or automation scripting Ability to ramp up quickly, take ownership of tasks, and contribute meaningfully in a collaborative team environment
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