Full-Time
Manufactures space hardware and AI-driven platform
No salary listed
Botany, Australia
In Person
Bachelor's
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Space Machines makes space hardware and software to protect critical space infrastructure. Its products include Optimus Viper rapid response vehicles, deployed at scale with human-on-the-loop autonomy for inspection and protection, and Solstice OS, an AI-driven platform that fuses space-domain data to automate mission planning, threat assessment, and vehicle coordination. The company differentiates itself by offering scalable, low-cost autonomous-enabled space capabilities and the first integrated security platform outside the US to help democratic nations manage large satellite constellations. Its goal is to counter near-peer space threats and safeguard satellites that support communications, navigation, and economic activity.
Company Size
11-50
Company Stage
Grant
Total Funding
$5.5M
Headquarters
Adelaide, Australia
Founded
2018
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Stock Options
Paid Vacation
Paid Sick Leave
Paid Holidays
Leave a reply. Consortium developing rapid AI-driven spacecraft manufacturing. 13 hours ago A consortium led by Space Machines Company has received Australian government funding to develop a generative AI design system and rapid manufacturing process for future spacecraft. The two-year project, called Optimised Generative AI Design for Mass-Manufacturable Spacecraft, brings together Space Machines Company, the University of Technology Sydney, the Advanced Manufacturing Readiness Facility at Bradfield City in Western Sydney, and Sydney-based engineering firm Fordyno. The consortium received $2.1 million in Cooperative Research Centres Projects funding from the Australian government. With partner contributions included, the project is valued at more than $5 million. The partners plan to build a machine-learning system that can generate spacecraft structures in response to changing design requirements. The project will pair that software with additive manufacturing and robotic assembly processes aimed at producing hardware within days rather than months. The work centers on Space Machines Company's Optimus Viper spacecraft. The company is targeting production of more than 20 Optimus Viper vehicles annually from its Australian facilities, making faster design and manufacturing a core requirement rather than a research exercise. The final milestone for the project is delivery of at least one flight-qualified Optimus Viper primary structure, validated to launch standards and ready for orbital deployment. The partners said the project should also produce a commercial version of the generative design software, validated manufacturing procedures and a path from requirements to flight-ready hardware in weeks. "Space security demands hardware that can evolve as fast as the threat," said Rajat Kulshrestha, CEO and Co-Founder of Space Machines Company. "This project gives us the generative design and manufacturing capability to move from requirement to flight-ready structure in a fraction of the time, and repeat that process at scale as the mission changes." UTS will develop the generative design application under the supervision of Professor Zhen Luo, leader of the university's Advanced Metacomposite Materials and Structures group. The university said the work will apply topology optimization to complete spacecraft structures, a more complex challenge than designing individual aerospace components. The project must account for launch loads, thermal cycles, payload changes and evolving mission requirements across an entire spacecraft primary structure. UTS said that level of complexity has limited broader use of generative design in spacecraft manufacturing. Manufacturing work will take place at the Advanced Manufacturing Readiness Facility in Bradfield City. The team plans to run as many as five build-test-iterate cycles once the AI system begins generating structures, with a target of completing each cycle from updated requirement to tested hardware within three weeks. Fordyno will support the project with structural analysis, design-for-manufacture work and fabrication experience. The company's role includes turning AI-generated structural concepts into manufacturable designs.
Space machines-led group wins grant for spacecraft design. 27/03/2026 A consortium led by Space Machines Company (SMC) has been awarded $2.9 million in Cooperative Research Centres Projects (CRC-P) grant funding from the Australian Government. Combined with contributions from the project partners, the total investment reaches $6 million, directed at fundamentally changing how spacecraft are designed and built in Australia. The two-year project, titled "Optimised Generative AI Design for Mass-Manufacturable Spacecraft", brings together SMC, the University of Technology Sydney (UTS), the Advanced Manufacturing Readiness Facility (AMRF) at Bradfield City in Western Sydney, and Sydney-based design and engineering firm Fordyno. Together, the partners will develop a machine learning system capable of generating optimal spacecraft structures in direct response to shifting design requirements. This will be coupled with additive manufacturing and robotic assembly processes that can produce physical hardware within days rather than months. The work addresses a challenge that has long constrained the space industry. Engineering software can model spacecraft in extraordinary detail, but sophistication has a cost: teams spend years refining virtual designs before committing to manufacture, only to discover problems the moment they start building. For SMC, targeting production of 20+ Optimus Viper vehicles annually from its Australian facilities, closing that gap is not a theoretical goal; it is a manufacturing necessity. The project is expected to support the creation of 15 to 20 high-skilled roles during its term, with SMC's longer-term expansion trajectory pointing to a workforce requirement several times that size. The final milestone is the delivery of at least one flight-qualified Optimus Viper primary structure, validated to launch standards and ready for orbital deployment. That outcome marks the point at which the project's research outputs become directly applicable to SMC's production plans: a commercial version of the generative design software, validated manufacturing procedures, and a proven path from requirement to flight-ready hardware in weeks, not months. "Space security demands hardware that can evolve as fast as the threat. This project gives us the generative design and manufacturing capability to move from requirement to flight-ready structure in a fraction of the time, and repeat that process at scale as the mission changes," said Rajat Kulshrestha, CEO and Co-Founder, Space Machines Company. The generative design application will be developed by UTS under the supervision of Professor Zhen (Jeff) Luo, Leader of the Advanced Metacomposite Materials and Structures group. His team brings world-leading expertise in topology optimisation to a problem that has not previously been solved at the level of complete spacecraft structures. While generative design has been applied to individual aerospace components, the multi-physics complexity of a full spacecraft primary structure, carrying launch loads, managing thermal cycles, and accommodating constantly evolving payload and mission requirements, has until now resisted it. "UTS is proud to be working with our partners on this project at the nexus of artificial intelligence and advanced manufacturing to deliver world-leading research for the space industry," said Professor Kate McGrath, Deputy Vice-Chancellor (Research), University of Technology Sydney. "Our long-standing partnership with Space Machines Company is an example of how UTS brings value to the industry. We combine deep academic expertise and outstanding technical capabilities with cutting-edge facilities. Most importantly, we bring these together with a collaborative and commercial mindset to address the big challenges faced by our partners and their industries, and translate research into real-world outcomes." Physical manufacture of the prototype structures will take place at the AMRF's advanced facility at Bradfield City, a NSW Government-funded centre whose machinery and capabilities are designed specifically for the kind of rapid, iterative production the project demands. The team will cycle through up to five build-test-iterate rounds once the AI system is generating structures, with the target of completing each cycle from updated requirement to tested hardware within three weeks. "This partnership with Space Machines Company and UTS shows how the Advanced Manufacturing Readiness Facility is turning research capability into applied outcomes for industry. By bringing together business, university expertise and government in Bradfield City, we're creating the right conditions for advanced industry and space technologies to be developed, tested and scaled here in Australia," said Ken Morrison, Chair, Advanced Manufacturing Readiness Facility and CEO, Bradfield Development Authority. Fordyno, a Sydney-based engineering services firm, brings structural analysis, design-for-manufacture expertise and hands-on fabrication experience to the project. Their role spans the translation of AI-generated structural concepts into manufacturable designs, contributing the kind of applied engineering judgement that bridges computational output and physical production. For Fordyno, the project also marks an entry into the space sector, extending a practice built on solving demanding manufacturing challenges across other industries. "Fordyno is honoured to join Space Machines Company in the 'Optimised Generative AI Design for Mass-Manufacturable Spacecraft' program. This initiative represents an exciting opportunity to combine cutting-edge generative AI with advanced engineering to transform how spacecraft are designed and manufactured," said Chunhua Wang, Managing Director, Fordyno. "With our expertise in lightweight structural engineering, composite materials design, and simulation-driven optimisation, Fordyno is excited to contribute to the development of next-generation spacecraft structures that are both high-performance and production-ready. We look forward to collaborating with industry partners to help strengthen Australia's capabilities in advanced manufacturing and the space sector." The project builds on work already underway at UTS Tech Lab in Botany, where SMC currently manufactures Optimus Viper spacecraft. It extends the collaboration between SMC and UTS that has been central to the company's development since its founding. The generative design algorithms developed are expected to carry intellectual property value well beyond the space sector. Any complex manufacturing environment where requirements evolve at pace stands to benefit. The rapid manufacturing techniques developed through the project directly support Australia's sovereign defence industrial priorities and the responsive capability development needs of its partners and allies.
Adelaide's Space Machines Company has partnered with the University of Technology Sydney (UTS) to create Australia's largest industrial-scale spacecraft manufacturing facility in a major milestone for the domestic space industry.
Adelaide-based in-space servicing firm Space Machines Company has teamed up with Lúnasa, a UK-based startup that is focused on next-gen autonomous navigation systems for in-space vehicles, on a mission to tackle the global issue of space debris and make space exploration more sustainable.
Indian space technology startup SatSure also collaborated with Space Machines to develop satellite and AI-based solutions to assist the agricultural, mining, and defense sectors in space[