堆栈可靠性总监
Ohmium
公司概况
Ohmium International
美国加利福尼亚州弗里蒙特
2019年
约550名员工(来源:linkedin.com)。截至2023年,总融资额为3.112亿美元(来源:cbinsights.com)。
他们的业务
Ohmium专注于通过先进的质子交换膜(PEM)电解槽生产绿色氢气。这些电解槽利用水和可再生能源生成高纯度氢气,而不依赖化石燃料(来源:ohmium.com)。他们的旗舰产品Lotus Mark 2电解槽具有超模块化设计,包括集中式水净化单元、基于乙二醇的冷却系统和专有电力电子设备,所有这些都集成在一个紧凑的占地面积内,允许垂直堆叠并在各种气候条件下部署(来源:ohmium.com)。该公司提供全球远程监控和维护等服务,确保从兆瓦到吉瓦级别的可扩展性,通过在印度制造的标准化设计(来源:ohmium.com)。目标市场包括工业应用、电力生产和运输燃料,重点关注在美国、欧洲、印度和中东等地区难以脱碳的行业(来源:ohmium.com)。Ohmium的竞争优势在于其高电流密度、动态升降能力和优越的铱利用率,使其在与ITM Power和西门子能源等行业竞争对手的竞争中处于有利地位(来源:ohmium.com)。
项目与业绩
Ohmium已建立超过2吉瓦的强大全球项目管道,证明其在极端条件下的可靠性(来源:ohmium.com)。其中一个显著项目是为克罗地亚INA里耶卡炼油厂提供10兆瓦PEM电解槽,旨在实现运营和燃料运输的脱碳,得到欧盟复苏与韧性基金的支持(来源:advancedbiofuelsusa.info)。在西班牙,Ohmium承诺每年提供多达52吨的绿色氢气,用于EFFI SOLAR GREENH2 PORTUARIO项目,该项目将替代气焰中的甲烷,显著减少二氧化碳排放(来源:ohmium.com)。此外,该公司还签署了一份300兆瓦PEM电解槽的条款清单,用于南欧的OFFSET海上浮动绿色氢气和氨项目,预计到2029年开始生产(来源:canvasbusinessmodel.com)。Ohmium的合作伙伴包括与Invenergy在纳尔逊能源中心进行涡轮冷却的合作,以及参与印度首个绿色甲醇工厂(来源:cbinsights.com)。
近期发展
在2023年,Ohmium成功筹集了2.5亿美元的C轮融资,由TPG Rise Climate主导,旨在将制造能力扩大到每年2吉瓦,并扩大研发工作(来源:esgtoday.com)。这紧随其后的是2022年4月的4500万美元B轮融资,使总融资额到2025年底达到3.112亿美元(来源:cbinsights.com)。该公司还在印度启用了PEM电解槽的千兆工厂,预计每年将减少400万吨二氧化碳排放(来源:ohmium.com)。在2024年,Ohmium获得了南欧300兆瓦项目的条款清单,并与印度首个绿色甲醇工厂达成合作,展示了其在绿色氢气领域扩展足迹的承诺(来源:canvasbusinessmodel.com)。到2025年,Ohmium获得了UL Solutions对使用水电解的氢气发生器的首个工业认证,进一步巩固了其在市场中的地位(来源:ohmium.com)。
在这里工作
Ohmium提供多样化的职位,包括工程、制造、运营、研发、合规和高管职位,吸引来自电解槽和燃料电池技术等各个行业的人才(来源:ohmium.com)。该公司主要在其位于加利福尼亚州弗里蒙特的总部招聘,同时还提供与其在印度的千兆工厂及美国、欧洲和中东的项目相关的机会(来源:builtin.com)。Ohmium的文化强调创新问题解决、快速执行和对人权合规的承诺,反映了其推动高效PEM技术的使命(来源:ohmium.com)。虽然具体的员工福利没有公开记录,但该公司通过全球远程监控和性能保证的角色促进运营福利(来源:ohmium.com)。求职者被鼓励访问他们的职业页面以获取当前职位信息(来源:ohmium.com)。
最后更新于 2月 23, 2026 | 报告问题
Job Description
As a senior engineering and technology leader, you will own the long-term reliability, durability, safety, and performance of PEM electrolyzer stacks-bridging early R&D and commercial-scale manufacturing for systems that must withstand harsh dynamic conditions, frequent start-stop cycles and fluctuating renewable power. You will own the reliability strategy from design through manufacturing, grounded in electrochemical first-principles and driving DFMEA/PFMEA as primary design tools not afterthought compliance checkboxes.
Key Responsibilities
- Define the reliability roadmap and targets for stack life, degradation rate and availability, grounded in electrochemical first-principles, spearhead Design for Reliability (DfR) and Manufacturability (DfM) across all stack generations.
- Make DFMEA/PFMEA primary tools (not afterthoughts), linking each failure mode to a test or design control, quantify all reliability claims with documented analytical basis.
- Design accelerated life testing (ALT) protocols and oversee the DVP&R to validate stack components under varied transient loads, pressures and temperatures.
- Implement stack diagnostics (EIS, Cyclic Voltammetry) to monitor decay and find root causes, while respecting the limits of each characterization tool and avoiding over-interpretation.
- Lead structured technical discussions, own root cause analysis on test data from the Testing Director and translate field feedback into design changes with closed-loop tracking.
- Collaborate with Materials Science on membrane, catalyst, and GDL resilience and with Manufacturing/Supply Chain on FAI and IQC metrics tied to reliability.
- Establish a regular communication cadence (technical deep-dives, cross-functional syncs, DFMEA/PFMEA reviews), communicate decisions in writing with supporting data and specific timelines-never vague terms like 'soon' or 'ASAP.'
- Own your full domain-roadmap, qualification plans, design changes, timelines, staffing and budgets-with transparency on both wins and setbacks, escalate early with clear context.
- Set realistic timelines with built-in contingency, plan alternate approaches rather than assuming success and document timeline decisions and their reasoning.
- Integrate cost and lifecycle economics into design decisions, including component-level cost breakdowns and sensitivity analyses, so $/reliability metrics carry unit-cost context.
Required Qualifications
- B.Tech/M.Tech in Chemical, Materials Science, Metallurgy, or Electrochemistry with a minimum 15+ years of experience in electrolyzer stack development, batteries or fuel cell development.
- Deep knowledge in electrochemical characterization techniques (CV, LSV, EIS), electrochemical degradation mechanisms, safety protocols, and regulatory compliance for electrolyzer/batteries.
- Proven ability to bridge engineering and operational teams to drive measurable product improvements.
- Strong data analysis skills, proficiency with reliability tools and statistical software (Minitab, JMP, or equivalent).
- Exceptional communication, leadership, and organizational skills.
- Understand the limits of diagnostic and characterization tools (EIS, CV, electron microscopy, etc.). Know what each tool can and cannot reliably tell you. Avoid over-interpreting results beyond their technical scope.
Preferred Qualifications
- Track record of systematizing reliability processes and driving measurable improvements across teams.
- Evidence of teaching others scientific reasoning and hypothesis-driven engineering, not just managing tasks.
- Extensive experience with DFMEA and PFMEA methodologies applied to design and manufacturing processes.
- Field experience with deployed electrochemical systems and real-world degradation analysis.
- Familiarity with renewable energy or electrochemical energy storage systems.
Leadership Philosophy & Cultural Fit
This role requires comfort with:
- Quantified decision-making: decisions backed by data, not opinions.
- Structured communication: technical rigor in staff meetings, written rationale for design changes.
- Ownership accountability: transparent reporting of both progress and setbacks.
- Avoiding hope-based planning: planning contingencies, escalating early, not assuming success.
- Continuous scientific learning: staying current on electrochemistry, degradation mechanisms, and characterization techniques.
This role will not be successful if the candidate:
- Prefers 'best effort' over systematic, accountable delivery.
- Communicates vaguely on timelines ('soon,' 'ASAP,' 'next week' instead of specific dates).
- Treats technical deep dives as status meetings.
- Avoids escalating problems until they become critical.
- Resists making decisions with incomplete information (needs 'perfect' data, not 'good enough').
- Defaults to trial-and-error approaches instead of hypothesis-driven, first-principles engineering.
Success Metrics (18-Month Horizon)
- DfR roadmap completed with quantified targets (e.g., 80k-hour stack life, <5% degradation/year) and documented first-principles basis.
- ALT protocols designed and validated for ???2 product generations, integrated into qualification plans with hypothesis validation.
- Design changes driven by field data with documented root cause analysis and closed-loop corrective action tracking (>80% closure rate).
- Team execution of DFMEA/PFMEA: zero 'checkbox' artifacts; all failure modes linked to verification methods with clear traceability.
- Qualification plans approved by cross-functional leadership and baseline-lined with clear success criteria.
Ohmium is an equal opportunity employer. We celebrate diversity and are committed to creating an inclusive environment for all employees.
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