Why This Role Stands Out
You'll thrive as a Machine Learning Engineer at Arkeus, developing cutting-edge AI for real-world impact in defence and national security, with opportunities for significant career growth and skill development. This hybrid role is perfect for those passionate about deploying advanced technology and contributing to a transparent, inclusive team culture.
Quick Overview
Job Description
Arkeus builds AI-powered sensing systems that help autonomous platforms detect, track and understand what's happening in the most complex and contested environments. Our technology is deployed across defence and national security applications - already protecting lives and strengthening security across the U.S. and allied markets.
Backed by QIC, Main Sequence, R+VC, Salus Ventures, Folklore Ventures, DYNE Ventures and Beaten Zone Venture Partners, Arkeus is entering a major growth phase. We are a small, fast-moving company with the energy and ambition of a start-up and the technical credibility of a world-class defence technology provider.
We work at the intersection of optics, autonomy, robotics and real-time AI and we deploy what we build. If you want to ship technology that matters, not technology that ships decks, this is where you belong.
We have developed an inclusive, transparent and engaging culture that focuses on building a diverse workforce - realising that to attract the very best, we need to ensure our culture is ready to welcome people from all ages, genders and backgrounds.
About the roleAs a Machine Learning Engineer at Arkeus, you will work with the Machine Learning team to prepare data and develop ML models, joining specialists working at the intersection of machine learning, computer vision, optical science and engineering design.
Your work will be central to our image-based optical sensing technology - training, optimising and deploying models that detect and classify objects from the airborne perspective, in real time, on real hardware.
You will take ownership of models and components across the full ML lifecycle - from data pipelines through to models running on edge devices - working alongside senior ML and computer vision engineers, translating state-of-the-art research into deployed capability, and helping guide and review the work of more junior engineers as the team grows.
About you- An engineer with hands on machine learning experience, ready to take on ownership and complex problems.
- A graduate in a relevant discipline, with demonstrated professional or research experience building and deploying ML models.
- Able to take a machine learning problem from idea to deployed result - independently, and demonstrated through professional work, research, or substantial personal projects.
- Enjoys reading research, experimenting and asking good questions.
- Wants to see your models running in the real world, not sitting in a notebook.
- Implement and improve the ETL process.
- Make data readily available to engineers across the team and improve and organise our datasets.
- Use PyTorch, OpenCV and scikit learn to design, build and train neural networks for image classification and object detection.
- Lead the implementation and optimisation of state of the art deep learned neural networks in computer vision applications.
- Contribute to and take ownership of accurate object detection across varied environments (over sea, littoral zone, rural and city) and at various target sizes.
- Participate in team meetings, conduct code reviews, and help uphold engineering standards across the team.
- Support and mentor junior engineers, sharing knowledge and good practice.
- Report software bugs and issues in the issue tracking system in a timely manner.
- Develop and maintain documentation.
- Tertiary qualification (Bachelor's or Master's) in computer science, engineering, mathematics or a related discipline.
- 2 4 years of demonstrated machine learning experience through professional work, research, or substantial personal projects.
- Confident working in Python, with solid hands on experience in PyTorch.
- Strong understanding of the fundamentals of neural networks and convolutional neural networks (CNNs).
- Hands on experience with object detection and/or segmentation problems.
- Familiarity with common libraries such as scikit learn, scikit image, PIL, Pandas and OpenCV.
- Sound research practices - able to read, understand and apply findings from technical literature.
- Eligibility to obtain and maintain an Australian Defence security clearance.
- Exposure to C++.
- Experience with data science workflows and data pipelines.
- Technical experience reading from and controlling cameras.
- Experience deploying and optimising models on edge devices or embedded hardware.
- Exposure to airborne remote sensing, GIS or optical technologies.
- Strong physics and mathematics background.
- Examples of personal or open source technical projects (GitHub links welcome).
- You will work on the hardest problems in deep tech - optics, autonomy, real time AI and hardware software integration in a single product. The gap between what you build and where it ends up is almost nonexistent.
- You will collaborate with exceptional leaders who have 40+ years of combined experience in autonomy, optics and defence. You will be learning from - and contributing to - the best in the field.
- You will become part of a close knit, ego free team where ideas compete on merit, not seniority. Low politics, high trust. The kind of team you will still be talking about in ten years.
- You will work hard and be expected to bring your best - and in return, you will grow faster than you ever would at a large organisation.
- You will work on technology that is already deployed in real environments - protecting lives and strengthening security across defence and national security applications.
- You will receive a competitive, market benchmarked salary, structured career pathways built to grow with you, and the opportunity to participate in our Employee Share Option Plan (ESOP).
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