Director, System Performance & Reliability Analytics

Bloom EnergySan Jose, CA
70d$203,000 - $292,100

About The Position

Bloom Energy is seeking a visionary and strategic leader to serve as Director, System Performance & Reliability Analytics. This role will lead the development and execution of advanced analytics frameworks to optimize the performance, reliability, and operational efficiency of our global fuel cell fleet. The ideal candidate will bring deep technical expertise, strong leadership capabilities, and a passion for leveraging data to drive innovation and continuous improvement. This role will report to Head of Quality and Reliability and is based in San Jose, CA. This is a fully on-site, in office role.

Requirements

  • Bachelor's or Master's degree in Data Science, Mechanical, Electrical, Chemical, Reliability, or Systems Engineering; advanced degree preferred.
  • 12+ years of experience in product reliability, performance analytics, or systems engineering.
  • Proven track record of building and leading high-performing teams across technical and business functions.
  • Expertise in data mining and analytics using Python, SQL, and statistical tools (JMP, Minitab); Tableau experience preferred.
  • Strong understanding of reliability engineering methodologies including Fault Tree Analysis, Reliability Block Diagrams, and Markov modeling; experience with Reliasoft or equivalent tools is a plus.
  • Skilled in RCCA methodologies (Six Sigma, 8D) with experience solving complex problems and driving corrective actions.
  • Strong business acumen with the ability to translate technical insights into strategic initiatives.
  • Exceptional communication and presentation skills, with the ability to influence senior leadership and guide cross-functional alignment.
  • Visionary mindset with a passion for leveraging data to drive innovation, operational excellence, and long-term product reliability.

Responsibilities

  • Lead the strategic direction and execution of fleet performance analytics, utilizing the reliability performance models, and field data to drive predictive insights and early anomaly detection.
  • Define and communicate a clear vision for data-driven reliability engineering, aligning cross-functional teams and fostering a culture of innovation and continuous improvement.
  • Define and execute strategies for utilizing fleet data that reduces overall service cost by enabling predictive product failure using deep learning algorithms to identify anomalous behavior that is correlated to the physics of the product failure modes and degradation.
  • Lead and participate in the engagement with C3 AI during the 2 year Reliability partnership.
  • Develop and implement advanced alerting systems and visual dashboards to monitor regional, product-specific, and operational deviations.
  • Integrate data from diverse sources to identify systemic degradation patterns and inform strategic reliability initiatives.
  • Oversee data validation and analysis using Python, SQL, and statistical tools to ensure high-quality insights and support executive decision-making.
  • Collaborate with Engineering, Quality, Field Service, and AI teams to accelerate root cause investigations and corrective actions.
  • Champion automation of analytical workflows to enable scalable and efficient fleet monitoring.
  • Facilitate the execution of automated inspection through pattern detection from learning models to improve efficiency on the production floor and reduce quality escapes in station.
  • Monitor and report on cost-of-poor-quality metrics, driving initiatives to reduce inefficiencies and improve product lifecycle economics.
  • Lead enterprise-wide problem-solving efforts, facilitating collaboration across Service, Operations, Engineering, and Quality teams.
  • Deliver high-impact presentations to internal and external stakeholders, translating complex technical analyses into strategic recommendations.

Benefits

  • Standard company benefits

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What This Job Offers

Job Type

Full-time

Career Level

Senior

Industry

Electrical Equipment, Appliance, and Component Manufacturing

Education Level

Master's degree

Number of Employees

1,001-5,000 employees

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