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About the role
On your first day, well expect: You have 12+ years of experience in a Data Engineer role as an individual contributor. You have at least 2 years of experience as a tech lead for a Data Engineering team. You are an engineer with a track record of driving and delivering large (multi-person or multi-team) and complex efforts. You are a great communicator and maintain many of the essential cross-team and cross-functional relationships necessary for the teams success. Experience with building streaming pipelines with a micro-services architecture for low-latency analytics. Experience working with varied forms of data infrastructure, including relational databases (e.g. SQL), Spark, and column stores (e.g. Redshift) Experience building scalable data pipelines using Spark using Airflow scheduler/executor framework or similar scheduling tools. Experience working in a technical environment with the latest technologies like AWS data services (Redshift, Athena, EMR) or similar Apache projects (Spark, Flink, Hive, or Kafka). Understanding of Data Engineering tools/frameworks and standards to improve the productivity and quality of output for Data Engineers across the team. Industry experience working with large-scale, high-performance data processing systems (batch and streaming) with a "Streaming First" mindset to drive Atlassians business growth and improve the product experience. Atlassian is looking for a Principal Data Engineer to join our Data Engineering Team and play a tech lead & architect role to build world-class data solutions and applications that power crucial business decisions throughout the organization. We are looking for an open-minded, structured thinker who is passionate about building systems at scale. You will enable a world-class engineering practice, drive the approach with which we use data, develop backend systems and data models to serve the needs of insights and play an active role in building Atlassians data-driven culture. Own the technical evolution of the data engineering capabilities and be responsible for ensuring solutions are being delivered incrementally, meeting outcomes, and promptly escalating risks and issues Establish a deep understanding of how things work in data engineering, use this to direct and coordinate the technical aspects of work across data engineering, and systematically improve productivity across the teams. Maintain a high bar for operational data quality and proactively address performance, scale, complexity and security considerations. Drive complex decisions that can impact the work in data engineering. Set the technical direction and balance customer and business needs with long-term maintainability & scale. Understand and define the problem space, and architect solutions. Coordinate a team of engineers towards implementing them, unblocking them along the way if necessary. Lead a team of data engineers through mentoring and coaching, work closely with the engineering manager, and provide consistent feedback to help them manage and grow the team Work with close counterparts in other departments as part of a multi-functional team, and build this culture in your team. Disclaimer: This job posting has been aggregated from external source. Role details, content, and availability are subject to change. Applicants are advised to confirm the latest information directly on the company website before applying.
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