Data Engineer

No longer listed
Fervo Energy
Houston, TX$103k–$170kPosted Jun 23, 2026
All Jobs  >  Data Engineer Apply Data Engineer Hybrid Remote • Houston, TX • Technology Apply Job Type Full-time Description   Fervo is building the most cost-effective, repeatable geothermal power plants in the world. Scaling that mission depends on a trustworthy, well-governed data foundation that turns raw sensor signals, drilling and completions records, and power plant telemetry into reliable, decision-ready information. The Data Engineer, within the Data & AI team, designs, builds, and operates the pipelines, models, and platforms that move data from the field to the people and systems that act on it — engineers, operators, data scientists, and the analytical and agentic applications built on top.The Data Engineer owns data products end to end — from ingestion and modeling, through quality, governance, and serving, to monitoring in production. Working across Data Science, AI Engineering, IT Infrastructure, domain SMEs, and business stakeholders, this role establishes reusable patterns for real-time and batch processing, IoT/historian integration, data quality and entity linkage, and self-service analytics on our Azure, Databricks, and Snowflake stack. Success requires strong hands-on engineering depth in distributed data processing, sound data modeling and architecture judgment, and pragmatism about what to ship versus what to defer. Requirements ResponsibilitiesData Pipeline & Platform EngineeringDesign, build, and operate scalable batch and real-time/streaming data pipelines on Databricks and Azure Data Factory, landing data in Azure Data Lake Storage (ADLS) and SnowflakeImplement the medallion (bronze/silver/gold) architecture using Delta Lake and Delta Live Tables, with reliable incremental processing, schema evolution, and change data captureBuild and tune Apache Spark jobs (PySpark/Spark SQL) for large-scale, parallel data processing — partitioning, shuffles, caching, broadcast joins, and cost/performance optimizationIngest and process high-volume IoT and historian data (sensor, SCADA, time-series) via streaming frameworks (Structured Streaming, Event Hubs/Kafka) and micro-batch patternsData Modeling, Quality & GovernanceModel curated, analytics-ready datasets and serving layers that are well-documented, performant, and easy for downstream consumers to useImplement automated data quality frameworks — validation, profiling, anomaly detection, freshness and completeness checks — with clear alerting and remediation pathsBuild entity resolution and record linkage logic to unify wells, pads, assets, equipment, and events across heterogeneous source systemsEstablish and enforce data governance using Unity Catalog — access controls, lineage, data classification, and a shared semantic/metadata layer that makes business concepts queryable and trustworthyReliability, CI/CD & Production OperationsApply software engineering discipline to data: version control, code review, automated testing, and CI/CD pipelines (Azure DevOps or GitHub Actions) for data and infrastructureImplement monitoring, logging, and observability across pipelines to support debugging, SLA tracking, cost monitoring, and continuous improvementSupport production incidents and platform-level issues impacting data pipelines and downstream consumers; develop runbooks and reduce toil through automationAnalytics Enablement & CollaborationPartner with analysts and stakeholders to deliver datasets and semantic models that power dashboards in Power BI and SpotfireCollaborate with Data Science and AI Engineering to provision clean, governed, feature-ready data for ML and agentic workflowsTranslate domain problems from drilling, completions, production, geophysics, and power plant operations into well-scoped, reliable data products with clear ownership and success metrics Required QualificationsBachelor’s or Master’s degree in Computer Science, Data Engineering, Software Engineering,...

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