Autonomy Engineer - Deep Learning Infrastructure
Listed on 2026-01-13
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Software Development
AI Engineer, Machine Learning/ ML Engineer, Software Engineer
About the role
If you are excited about leveraging massive amounts of structured video data to solve problems in Computer Vision (CV) such as object detection and tracking, optical flow estimation and segmentation, we would love to hear from you.
How you'll make an impact- Develop solutions for high-performance deep learning inference for CV workloads that can deliver high throughput and low latency on different hardware platforms.
- Profile CV and Vision Language Models (VLMs) to analyze performance, identify bottlenecks and optimization opportunities and improve power efficiency of deep learning inference workloads.
- Design and implement end-to-end MLOps workflows for model deployment, monitoring and re‑training.
- Utilize advanced Machine Learning knowledge to leverage training or runtime frameworks or model efficiency tools to improve system performance.
- Create new methods for improving training efficiency.
- Implement GPU kernels for custom architectures and optimized inference.
- Design and implement SDKs that allow customers/external developers to create autonomous workflows using ML.
- Leverage your expertise and best‑practices to uphold and improve Skydio’s engineering standards.
- Demonstrated hands‑on experience with MLOps, ML inference optimization and edge deployment.
- Strong knowledge of DL fundamentals, techniques and state‑of‑the‑art DL models/architectures.
- Strong fundamentals in CV, image processing and video processing.
- Demonstrated hands‑on experience building and managing ML pipelines for solving vision or vision language tasks including data preparation, model training, model deployment and monitoring.
- Experience and understanding of security and compliance requirements in ML infrastructure.
- Experience with ML frameworks and libraries.
- You have demonstrated ability to take a concept and systematically drive it through the software lifecycle: architecture, development, testing, and deployment, and monitoring.
- You are comfortable navigating and delivering within a complex codebase.
- Strong communication skills and the ability to collaborate effectively at all levels of technical depth.
At Skydio, our compensation packages for regular, full‑time employees include competitive base salaries, equity in the form of stock options, and comprehensive benefits packages. Compensation will vary based on factors, including skill level, proficiencies, transferable knowledge, and experience. Relocation assistance may also be provided for eligible roles. The annual base salary range for this position is $170,000 – 236,500*. Fundamentally, we believe that equity is the key to long‑term financial growth, and we ensure all regular, full‑time employees have the opportunity to significantly benefit from the company’s success.
Regular, full‑time employees are eligible to enroll in the company’s group health insurance plans. Regular, full‑time employees are eligible to receive the following benefits: paid vacation time, sick leave, holiday pay and 401(k) savings plan. This position and all associated benefits are subject to applicable federal, state, and local laws, as well as the company's policies and eligibility criteria.
* Compensation for certain positions may vary based on the position’s location.
At Skydio we believe that diversity drives innovation. We have created a multidisciplinary environment that embraces the power of diverse perspectives to create elegant solutions for complex problems. We are committed to growing our network of people, programs, and resources to nurture an inclusive culture.
Qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, protected veteran status, or other characteristics protected by federal, state or local anti‑discrimination laws.
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