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Zibra AI is seeking a Technical Product Owner to lead the platform for large-scale scientific and engineering data, translating complex technical requirements into a practical roadmap and defining MVPs aligned with engineering workflows.
You will collaborate with backend, frontend, GPU, and visualization engineers, shaping workflows for ingestion, visualization, sharing, AI model training, and interoperability with tools like ParaView, Python, PyTorch, and APIS.
Currently, we are looking for a Technical Product Owner for Zibra A.
About our client: Zibra AI is a deep-tech company building data infrastructure for spatial and physical AI. With deep expertise in 3D data compression, GPU technologies, and real-time data pipelines, the team develops technology that enables large-scale 3D datasets to be stored, streamed, visualized, and used for AI workflows more efficiently.
Product Overview: Zibra AI is building the data infrastructure layer for Physics AI — bringing streaming, random access, and GPU-native processing to massive 3D scientific datasets. Our goal is to make petabyte-scale simulation data as easy to access and work with as video is today.
Role Overview: We are looking for a Technical Product Owner to take ownership of a new platform for large-scale scientific and engineering data.
This role is ideal for someone who understands simulation workflows firsthand and has moved from engineering, scientific computing, or technical software into product ownership. We are particularly interested in people with backgrounds in ParaView/VTK, CFD, FEA, CAE, simulation software, scientific visualization, HPC, or engineering data platforms.
You will work closely with engineering and research teams to define the product, prioritize the roadmap, translate complex technical requirements into clear product decisions, and ensure that what we build fits real engineering workflows.
We are open to several types of profiles: