Trust Wallet
Trust Wallet Senior Data Engineer Полная занятость Формат работы: удалённо (Remote - Global) ☑️ Чем предстоит заниматься -Data Platform Engineering: Architect and maintain robust, scalable and secure data infrastructure on Databricks, covering both streaming and batch workloads. -Data Pipeline Development: Design, develop and maintain data pipelines, primarily in Python and Spark, to automate ingestion and transformation across internal systems, external providers and on-chain sources. -Data Modelling: Design and maintain dimensional data models and transformation layers in dbt, with tests and documented contracts, so metrics are consistent and reusable across the company. -Data Lake Management: Oversee the data lake and lakehouse layers, ensuring efficient storage, effective partitioning, high data quality, and monitoring and alerting that surfaces issues early. -Integration and Customisation: Integrate Databricks with a wide range of data sources, including change data capture from operational databases, third-party APIs and blockchain data, and adapt data flows to specific business needs. -Performance, Scalability and Cost: Optimise pipelines and storage for performance, reliability and cost efficiency at scale. -Data Governance and Security: Apply best practices for governance, security and compliance in cloud and Databricks environments, including access control, encryption and monitoring. -Collaboration and Documentation: Work closely with platform engineers, data analysts and other stakeholders to understand data requirements, and document infrastructure, models and best practices. ☑️ Наши пожелания к кандидатам -Experience in Data Engineering: 3+ years as a Data Engineer, with hands-on ownership of production pipelines and lakehouse or data warehouse architecture. -Databricks and Spark: Strong practical experience with Databricks, Delta Lake and Spark, including both streaming and batch processing, and the judgement to choose between them. -Data Modelling: Solid understanding of dimensional modelling, slowly changing dimensions and data warehouse design, with the ability to define and defend the grain of the models you build. -Transformation Frameworks: Experience with dbt or an equivalent framework for managing transformations, testing and lineage. -Cloud Proficiency: Strong cloud fundamentals, including identity and access management, object storage, networking and infrastructure as code. We run on AWS; deep experience with Azure or GCP transfers well. -Proficiency in Python and SQL: Comfortable writing production transformations as well as services and connectors. -Data Quality and Governance: Experience implementing testing, monitoring and governance practices in cloud data environments. -Nice to have: -Experience with change data capture and replication from operational databases -Familiarity with blockchain or on-chain data -Infrastructure as code, ideally Terraform, and CI/CD for data workloads -Experience with BI and semantic layers such as Holistics, Looker or similar -Containerisation and orchestration (Docker, Kubernetes)
⚠️ Будьте внимательны: вакансия размещена из открытых источников и может быть недостоверна.
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