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Principal Product Manager, ExaScaler

DDN · Remote, United States

Business StrategyLeadRemoteExternal listingfull-time5 days ago

About The Role

DDN is seeking a Principal Product Manager to lead strategic product areas for EXAScaler. This role shapes product direction, drives cross-team alignment, and represents the product with senior customers and internal stakeholders.

KEY RESPONSIBILITIES

  • Define and drive the multi-release strategy and roadmap for major EXAScaler product domains.
  • Translate strategy into prioritized, outcome-driven roadmaps, clear PRDs, and detailed user stories with measurable success criteria.
  • Partner with engineering leadership to make architecture, investment, and sequencing decisions, balancing innovation with reliability and technical debt reduction.
  • Act as a senior product voice with customers and partners, including executive briefings, roadmap deep dives, and joint solution planning for large-scale AI and HPC deployments.
  • Shape competitive strategy for EXAScaler in AI and high-performance data infrastructure, including pricing and packaging input, win/loss analysis, and market differentiation.
  • Use data (product analytics, customer feedback, and financial performance) to drive portfolio-level decisions and product investment trade-offs.

QUALIFICATIONS

MUST HAVE

  • 12+ years of product management experience in infrastructure, data platforms, storage, HPC environments, or cloud services.
  • Proven track record of delivering production features at scale, from definition through launch and iteration.
  • Demonstrated ability to write concise PRDs and user stories with clear acceptance criteria and measurable success metrics.
  • Experience working closely with sales teams, solutions architects, and customers on proof-of-concepts, roadmap discussions, and product escalations.
  • Excellent communication and stakeholder management skills across both technical and non-technical audiences.
  • Bachelor’s degree in Computer Science, Engineering, or related field, or equivalent practical experience.

NICE TO HAVE

  • Experience with data infrastructure supporting AI workloads, including training and inference pipelines or large-scale unstructured data environments.
  • Familiarity with parallel file systems and high-performance storage architectures.
  • Background in cloud-native architectures including microservices, containers, observability frameworks, and APIs.
  • Strong technical depth in at least one of the following:
  • Distributed storage or parallel file systems (Lustre, object, file, block, or key-value storage)
  • Cloud infrastructure platforms (AWS, Azure, GCP) or Kubernetes-based environments
  • Prior experience working in a B2B enterprise infrastructure company or high-growth technology environment.

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