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Software Engineer, AI Specialist - Wearables AI; Technical Leadership

Job in Burlingame, San Mateo County, California, 94012, USA
Listing for: Meta
Full Time position
Listed on 2026-10-05
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer, Software Architect
Salary/Wage Range or Industry Benchmark: 219000 - 301000 USD Yearly USD 219000.00 301000.00 YEAR
Job Description & How to Apply Below
Position: Software Engineer, AI Specialist - Wearables AI (Technical Leadership)
Software Engineer, AI Specialist
- Wearables AI (Technical Leadership)# Software Engineer, AI Specialist
- Wearables AI (Technical Leadership)
Burlingame, CA Artificial Intelligence+ 2 more Apply nowMeta is seeking a distinguished software engineer with deep AI specialization to drive transformative technical initiatives for Wearables AI. In this role, you will define and lead the architectural direction of large-scale AI systems powering Meta's wearable devices — including smart glasses and next-generation wearable platforms. You will build intelligent on-device and cloud-based AI experiences spanning multimodal understanding, contextual assistants, and real-time interactive AI systems.

This is a role for a technical leader who operates at the intersection of cutting-edge AI research and production-scale engineering, shaping both the systems and the culture that powers Meta's wearables AI future.

---## Software Engineer, AI Specialist
- Wearables AI (Technical Leadership) Responsibilities
* Identify and solve the most complex AI modeling and systems challenges for wearables, including architecting an omni LLM for wearables interactions, optimized for power, latency, and compute constraints
* Define extensible technical foundations and cross-organizational standards for wearables AI model development, evaluation, and deployment pipelines across Meta's wearable device portfolio
* Drive the technical vision and multi-year roadmap for Wearables AI platform capabilities, influencing priorities across teams and cross-functional partners including research, hardware, product, and data science
* Evaluate emerging AI architectures and industry developments in wearables AI to identify opportunities and risks relevant to Meta's competitive position
* Lead the design and implementation of multimodal AI systems for wearables, including vision, audio, and agentic capabilities, reliability, and real-time performance are critical
* Identify where AI tooling and automation can eliminate entire categories of engineering work, and drive adoption of AI-native workflows across wearables engineering teams
* Collaborate with research scientists to translate novel AI techniques into production wearables systems that deliver seamless, intelligent user experiences
* Mentor engineers across the organization by providing customized technical coaching, leading architecture reviews, and establishing a culture of rigor for wearables AI development
* Partner with hardware, legal, policy, and compliance teams to ensure wearables AI systems meet privacy, security, and integrity standards for always-on, sensor-rich devices
* Define new metrics and data-driven decision-making principles for long-term wearables AI initiatives, connecting technical outcomes to organization-level priorities and business impact##

Minimum Qualifications
* Bachelor's degree in Computer Science, Computer Engineering, relevant technical field, or equivalent practical experience
* 12+ years of experience in software engineering with a focus on AI, LLM systems, or applied AI in production environments
* Experience architecting and delivering large-scale AI, including training infrastructure, model serving, or foundation model pipelines
* Experience leading multi-team technical initiatives end-to-end, including defining strategy, driving cross-functional alignment, and delivering measurable outcomes against organization-level goals
* Experience identifying and resolving systemic engineering issues that span models, multiple systems or abstraction layers, including developing frameworks that prevent recurring classes of failures
* Experience communicating complex AI designs and technical trade-offs in writing and presentations to both technical and non-technical audiences, including engineering leadership##

Preferred Qualifications
* Contributions to peer-reviewed AI research (e.g., NeurIPS, ICML, ICLR, ACL, EMNLP, CVPR, KDD) or demonstrated track record of translating research advances into production AI systems
* Experience with large-scale Omni LLM training optimization, distributed training frameworks, or inference efficiency techniques such as quantization, distillation, or speculative decoding
* Experience with conversational AI, vision understanding, wearables AI systems
* Experience applying AI and automation tooling to eliminate categories of engineering toil and measurably improve team-level or organization-level engineering efficiency---## About Meta Meta builds technologies that help…
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