About Interval Interval helps enterprises turn messy, underused data into governed, high-confidence intelligence—without handing control to a black box. We bring compute to your data with a private data lakehouse, verifiable audit trails, and U-AI , our contextual AI framework for secure AI workflows. Our platform is built around three outcomes: - Control: Keep ownership of your data and how models use it. - Verify: Audit what happened, why it happened, and where results came from. - Monetize: Create new revenue opportunities through private, permissioned data exchange. Role Overview We are seeking a highly skilled Data Engineer to join our team and revolutionize how enterprises secure, analyze, and monetize their data—on their terms. As a Data Engineer at Interval, you’ll work on building and optimizing secure, scalable data pipelines and infrastructure that ensure privacy, compliance, and enable AI-powered business transformation. Key Responsibilities - Design, develop, and maintain scalable data pipelines for ingestion, transformation, and delivery of large datasets across diverse industries. - Implement and ensure data privacy and security best practices, supporting data sovereignty and compliance with regulatory requirements. - Collaborate closely with AI/ML engineers, Data Scientists, and Platform engineers to enable advanced analytics and AI capabilities while retaining strict data control. - Optimize data platforms and systems for performance, reliability, and cost efficiency. - Build tools and frameworks for secure, privacy-preserving data processing and orchestration. - Develop and maintain documentation, data models, and technical workflows. - Partner with cross-functional teams to launch new data-driven product features and solutions. Qualifications - Bachelor’s or Master’s degree in Computer Science, Engineering, or a related technical field. - Proven experience in designing and building ETL pipelines and data infrastructure (cloud, hybrid, and/or on-premise). - Strong proficiency with Python, SQL, and modern data engineering toolsets (e.g., Apache Spark, Kafka). - Solid understanding of data security, privacy frameworks, and regulatory compliance such as GDPR, CCPA, or equivalent. - Experience with privacy-first, AI-native, or data sovereignty-focused platforms is a plus. - Familiarity with industry-specific data challenges (CPG, financial services, energy, supply chain, etc.) is advantageous. - Excellent analytical and communication skills; proactive and detail-oriented. Why Interval? - Shape the frontier of AI, blockchain, and enterprise data infrastructure. - Enjoy meaningful ownership, flexible work, and the autonomy where data, AI, and privacy meet - Thrive in a sharp, mission-driven team backed by top-tier technical leadership and investors
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