Full-Time

Lead Fleet Reliability Data Engineer

Fleet Performance & Analytics, Fleet Intelligence & Reliability

GE Vernova

GE Vernova

1,001-5,000 employees

Global energy provider: power, wind, electrification

No salary listed

Barcelona, Spain + 1 more

More locations: Chennai, Tamil Nadu, India

Remote

Relocation assistance is provided.

Bachelor's, Master's

Category
Data & Analytics (2)
,
Required Skills
Microsoft Azure
Python
Airflow
Apache Spark
SQL
Machine Learning
Apache Kafka
RDBMS
ETL
Data Engineering
Infrastructure as Code (IaC)
Docker
Version Control
Cybersecurity
AWS
Observability
REST APIs
Data Modeling
Data Governance
DevOps
Databricks
Snowflake
Google Cloud Platform

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Requirements
  • Bachelor's degree in Computer Science, Data Engineering, Software Engineering, Electrical Engineering, Systems Engineering, Control Systems Engineering, or a related technical field.
  • A minimum of 8 years of experience in data engineering, industrial data systems, software engineering, reliability data, operational technology data, or a related technical function.
  • Strong proficiency in SQL and Python for data ingestion, transformation, validation, automation, testing, and data-product development.
  • Experience designing and operating ETL or ELT pipelines that integrate data from multiple structured, semi-structured, and time-series sources.
  • Experience with data modeling, relational databases, schemas, APIs, version control, automated testing, and production-support practices.
  • Experience implementing data-quality validation, lineage, monitoring, error handling, reconciliation, and traceability controls.
  • Ability to translate engineering and reliability requirements into scalable data structures, interfaces, and reusable data products.
  • Strong written and verbal communication skills in English and the ability to collaborate across global engineering, digital, and operational teams.
Responsibilities
  • Design, build, and maintain scalable data pipelines that ingest and integrate operational telemetry, alarms, events, maintenance records, field interventions, asset configuration, software versions, and engineering findings.
  • Develop and maintain a standardized fleet asset model and hierarchy covering sites, systems, equipment, assemblies, components, serial numbers, configurations, and relevant parent-child relationships.
  • Establish traceability for significant interventions, component replacements, repairs, configuration changes, software updates, and other lifecycle events affecting critical fleet equipment.
  • Create curated and reusable reliability datasets that support Root Cause Analysis, failure trending, recurrence analysis, fleet exposure assessment, performance monitoring, and corrective-action validation.
  • Develop robust methods to link operational events and alarms with maintenance actions, failure records, product configuration, environmental conditions, and investigation outcomes.
  • Define and implement data-quality rules for completeness, accuracy, consistency, timeliness, uniqueness, lineage, and contextual integrity.
  • Build automated controls that identify missing data, inconsistent asset identifiers, invalid timestamps, duplicate interventions, configuration conflicts, and broken data relationships.
  • Partner with Reliability and Root Cause Analysis engineers to structure investigation data, identify comparable fleet events, define affected populations, and preserve reusable evidence from completed Root Cause Analyses.
  • Partner with Data Analytics and Artificial Intelligence engineers to provide governed, documented, and analysis-ready data products for dashboards, anomaly detection, predictive models, and engineering decision-support tools.
  • Develop fleet master-data standards, naming conventions, taxonomies, failure classifications, intervention categories, and metadata required for consistent fleet-level analysis.
  • Integrate data from industrial historians, Supervisory Control and Data Acquisition systems, remote-monitoring platforms, service-management systems, engineering databases, and other relevant sources.
  • Create reliable application programming interfaces, data services, semantic layers, and governed access patterns that enable engineering teams to use fleet data efficiently and consistently.
  • Maintain data lineage, source-to-target mappings, interface specifications, transformation logic, ownership definitions, and technical documentation for reliability data products.
  • Implement monitoring and alerting for data-pipeline health, ingestion failures, schema changes, latency, processing errors, and data-quality degradation.
  • Support migration and harmonization of historical fleet data while preserving source context, auditability, and engineering meaning.
  • Work with cybersecurity, data-governance, and platform teams to ensure appropriate access control, retention, privacy, backup, recovery, and lifecycle management.
  • Improve engineering productivity by automating repetitive data preparation, reconciliation, event correlation, fleet-population analysis, and reliability reporting activities.
  • Communicate data limitations, quality risks, dependencies, and remediation priorities clearly to engineering and leadership stakeholders.
  • Promote a culture of data ownership, traceability, technical rigor, collaboration, and continuous improvement across the Fleet Intelligence and Reliability organization.
Desired Qualifications
  • An advanced degree in Data Engineering, Computer Science, Engineering, Reliability, or a related discipline.
  • Experience with renewable energy, solar inverters, battery energy storage systems, power electronics, plant controls, power generation, or industrial automation.
  • Understanding of reliability engineering concepts, including failure modes, recurrence, affected population, corrective actions, availability, maintainability, and Root Cause Analysis.
  • Experience working with industrial time-series data, alarms, events, maintenance history, asset configuration, and equipment lifecycle records.
  • Experience with cloud data platforms, data lakes or lakehouses, distributed processing, workflow orchestration, and streaming or near-real-time ingestion.
  • Experience with Spark, Databricks, Snowflake, Azure, Amazon Web Services, Google Cloud, Airflow, dbt, Kafka, or equivalent platforms.
  • Familiarity with Supervisory Control and Data Acquisition systems, industrial historians, OPC Unified Architecture, Modbus, IEC protocols, and remote-monitoring architectures.
  • Experience developing asset models, knowledge graphs, semantic layers, metadata catalogs, master-data solutions, or industrial digital twins.
  • Knowledge of service-management, maintenance-management, product-lifecycle, or enterprise asset-management data structures.
  • Experience with DevOps or DataOps practices, including continuous integration and continuous delivery, infrastructure as code, containerization, automated testing, observability, and controlled deployment.
  • Knowledge of cybersecurity and data-governance requirements applicable to industrial and operational technology environments.
  • Experience supporting analytics, machine-learning, condition-monitoring, or predictive-maintenance solutions with production-quality data products.
  • Ability to understand engineering drawings, equipment structures, configuration records, failure reports, and technical investigation documentation.
  • Strong systems thinking, attention to detail, ownership of data quality, and ability to resolve ambiguous or conflicting source information.
  • Ability to prioritize foundational work, collaborate across functions, and deliver sustainable solutions rather than one-time data extracts.

GE Vernova is a global energy company created in 2024 to support the electricity grid and the energy transition, with three focuses: Power, Wind, and Electrification. It sells large-scale equipment, signs long-term service agreements, and provides software to utilities, independent power producers, grid operators, and large industrial energy users. Its products include H-Class gas turbines that can burn natural gas with blends of hydrogen toward 100% hydrogen, Haliade-X offshore wind turbines up to 14.7 MW, and GridOS software that unifies grid data to help manage networks and integrate renewables. By combining hardware, services, and software under GE heritage, it aims to meet rising electricity demand while accelerating decarbonization across global energy systems.

Company Size

1,001-5,000

Company Stage

N/A

Total Funding

$17.6M

Headquarters

Cambridge, Massachusetts

Founded

2022

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Simplify Jobs

Simplify's Take

What believers are saying

  • Q2 2026 orders rose 88% to $24.2 billion, led by Power and Electrification.
  • Backlog hit $176 billion in July 2026, with gas equipment expected to reach 125 GW.
  • August 2026 JV with LS Electric expands GE Vernova in Korea's HVDC market.

What critics are saying

  • Vineyard Wind sued GE Vernova in April 2026; blade failures damaged offshore credibility.
  • Wind execution remains fragile after the 2024 blade break and court-ordered project continuation.
  • If gas-turbine production slips below 20 GW in 2026, backlog monetization stalls.

What makes GE Vernova unique

  • GE Vernova controls Power, Wind, and Electrification across generation and grids worldwide.
  • Its gas turbine backlog reached 116 GW in Q2 2026, supporting long-duration demand.
  • GridOS, HVDC, and gas turbines position GE Vernova for AI-driven electrification buildouts.

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Benefits

Health Insurance

Dental Insurance

Vision Insurance

Life Insurance

Disability Insurance

401(k) Retirement Plan

401(k) Company Match

Paid Vacation

Paid Parental Leave

Mental Health Support

Relocation Assistance

Performance Bonus

Company News

Yahoo Finance
Sep 10th, 2026
Big Tech burns $13.5B as AI buildout sends Treasury yields to 4.79%

US Treasury yields near 4.79% reflect strong corporate borrowing for AI investments rather than economic weakness, according to analysts Joel Litman and Rob Spivey. They argue that context matters more than absolute rate levels. Companies borrowing at 5% to fund projects returning 30-40% benefit from current rates, whilst those earning less than borrowing costs face pressure. The analysts note that AI-related corporate debt issuance reached roughly $1.5 trillion this year, driving yields higher. Alphabet posted its first negative free cash flow since 2004, burning $5.9 billion in Q2 as capital expenditure hit $44.9 billion. Amazon swung to negative $7.6 billion on a trailing basis. However, negative cash flow can signal productive investment rather than distress, the analysts suggest.

Yahoo Finance
Sep 4th, 2026
GE Vernova and Quanta Services poised to weather market crash with strong backlogs and AI-driven growth

GE Vernova and Quanta Services are positioned as resilient stocks that could withstand market volatility, according to a new analysis. Both companies are benefiting from surging demand for electrical infrastructure driven by AI and data centre expansion. GE Vernova, spun off from General Electric in 2024, has seen its stock rise more than sixfold since debut. The company's backlog expanded 37% year over year to $176.3 billion at the end of Q2 2026, nearly four times its projected annual revenue of $46.2 billion. Quanta Services, an energy infrastructure builder, reported a backlog of $53.4 billion in Q2 2026, up 49% year over year. The company's revenue is projected to grow 39% in 2026. Analysts expect GE Vernova's revenue and adjusted EBITDA to grow at compound annual growth rates of 17% and 60% respectively from 2025 to 2028.

Fortune
Sep 1st, 2026
GE Vernova hires Rivian CFO Claire McDonough, leaving EV maker without clear successor

GE Vernova has hired Claire McDonough as CFO, effective 1 January, leaving electric vehicle maker Rivian to find her successor. McDonough joined Rivian in January 2021 and helped take the company public through a $13.7 billion IPO that November. She also negotiated Rivian's technology joint venture with Volkswagen, which agreed to invest up to $5.8 billion. Rivian shares fell more than 6% following the announcement, whilst GE Vernova shares declined about 3%. Analysts cited Rivian's lack of a clear succession plan as a factor weighing on its shares. Derek Mulvey, Rivian's VP of finance, is expected to serve as interim CFO after McDonough's departure. McDonough will join GE Vernova in November, succeeding Kenneth Parks, who is retiring.

Yahoo Finance
Aug 31st, 2026
SpaceX builds turbine foundry to break AI power bottleneck, cut GE Vernova wait times by 18 months

Elon Musk's SpaceX is building a foundry in Bastrop, Texas, to manufacture blades and vanes for industrial gas turbines, according to The Information. Musk confirmed the move on X, saying in-house casting could accelerate natural gas turbines coming online by up to 18 months. The initiative targets the same supply chain bottleneck GE Vernova has flagged to investors. GE Vernova CEO Scott Strazik said the company pushed suppliers to add capacity in 2024, sometimes providing capital for new furnaces. GE is mostly sold out through 2030 and aims to increase annual turbine production from 20 gigawatts this year to 30 GW by decade's end. SpaceX has committed over $2.8 billion to gas turbines over three years to support its Colossus data centres near Memphis. The move addresses growing power demand from AI infrastructure expansion.

Yahoo Finance
Aug 29th, 2026
GE Vernova and LS Electric form JV to target South Korea's HVDC market

GE Vernova has formed a joint venture with LS Electric to strengthen its position in the high-voltage direct current sector. Announced at the CIGRE 2026 event in Paris, the partnership will focus on South Korea's voltage source converter-based HVDC projects, which are crucial for transmitting renewable energy from the southwestern region to greater Seoul. The venture combines GE Vernova's VSC-HVDC technology with LS Electric's local capabilities and market presence. The companies also plan to pursue HVDC opportunities in other global markets. The move aligns with GE Vernova's strategy to capitalise on growing power infrastructure demand. During Q2, the company's Power orders jumped 135% year-over-year, whilst Electrification revenue grew 68%. However, the joint venture faces execution risks and may take time to generate meaningful revenue.