Live opening · Posted 7 days ago
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About the role
Description supplied by the original job listing.
We are making the future of Mobility come to life starting today.
At Autofleet we support the world's largest vehicle fleet operators and transportation providers to optimize existing operations and seamlessly launch new, dynamic business models - driving efficient operations and maximizing utilization.
At the heart of our platform lies the data infrastructure, driving advanced machine learning models and optimization algorithms. As the owner of data pipelines, you'll tackle diverse challenges spanning optimization, prediction, modeling, inference, transportation, and mapping.
As a Senior Data Engineer, you will play a key role in owning and scaling the backend data infrastructure that powers our platform—supporting real-time optimization, advanced analytics, and machine learning applications.
Requirements
Design, implement, and maintain robust, scalable data pipelines for batch and real-time processing using Spark, and other modern tools
Own the backend data infrastructure, including ingestion, transformation, validation, and orchestration of large-scale datasets
Leverage Google Cloud Platform (GCP) services to architect and operate scalable, secure, and cost-effective data solutions across the pipeline lifecycle
Develop and optimize ETL/ELT workflows across multiple environments to support internal applications, analytics, and machine learning workflows
Build and maintain data marts and data models with a focus on performance, data quality, and long-term maintainability
Collaborate with cross-functional teams including development teams, product managers, and external stakeholders to understand and translate data requirements into scalable solutions
Help drive architectural decisions around distributed data processing, pipeline reliability, and scalability
Benefits
4+ years in backend data engineering or infrastructure-focused software development
Proficient in Python, with experience building production-grade data services
Solid understanding of SQL
Proven track record designing and operating scalable, low-latency data pipelines (batch and streaming)
Experience building and maintaining data platforms, including lakes, pipelines, and developer tooling
Familiar with orchestration tools like Airflow, and modern CI/CD practices
Comfortable working in cloud-native environments (AWS, GCP), including containerization (e.g., Docker, Kubernetes)
Bonus: Experience working with GCP
Bonus: Experience with data quality monitoring and alertingֿ
Bonus: Experience with Snowflake, DBT, Flink, Kafka
Bonus: Strong hands-on experience with Spark for distributed data processing at scale
Degree in Computer Science, Engineering, or related field
Work arrangement
Hybrid
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