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Remote Principal Devsecops Architect Jobs in California

Principal Data Architect

Irvine, CA · Remote

$126K - $214K/yr

Principal Data Architect Full-time Remote Exclusive confidential search -- details shared with qualified applicants. Become a Key Player as a Principal Data Architect You will design and build the ...

Principal Software Engineer

El Segundo, CA · On-site +1

$143K - $192K/yr

Principal Software Engineer Belong. Connect. Grow. with KBR! KBR is seeking an experienced ... architectural challenges. * DevSecOps Collaboration: Partner with platform engineering and ...

Principal Software Engineer

El Segundo, CA · On-site +1

$143K - $192K/yr

Principal Software Engineer Belong. Connect. Grow. with KBR! KBR is seeking an experienced ... architectural challenges. * DevSecOps Collaboration: Partner with platform engineering and ...

Principal Software Engineer (Python)

Irvine, CA · On-site +1

$144K - $194K/yr

The hybrid-remote Principal Software Development Engineer leads the design, development, and ... Architect and Evolve the Semantic Layer: Lead the redesign and scaling of the existing Semantic ...

$175K - $285K/yr

Will consider remote in the United States. The role: Principal Software Engineer, Performance ... Develop and extend architecture simulators to support performance analysis of proposed HW/SW ...

Senior DevSecOps Engineer

San Francisco, CA · Remote

$134K - $185K/yr

Senior DevSecOps Engineer (Remote-based role that requires US-citizenship) About us Hyperproof is ... Architect secure, scalable platform infrastructure including GitHub Actions, GitLab, and ADO CI/CD ...

$195K - $285K/yr

Will consider remote in the United States. The role: Principal Architect, Performance Analysis and Modeling d-Matrix is seeking outstanding computer architects to help accelerate AI application ...

Headquartered in Sunnyvale, CA, and Munich, Germany, with remote team members across North America ... Lead the architectural planning and definition of new Tensordyne AI processors, that consist of ...

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Infographic showing various Remote Principal Devsecops Architect job openings in California as of August 2026, with employment types broken down into 82% Full Time, 14% Part Time, 1% Temporary, and 3% Contract. Highlights an 91% Physical, 2% Hybrid, and 7% Remote job distribution.

Principal Machine Learning Engineer, Artificial Intelligence (AI) Required, Work From Home

San Francisco, CA • Remote

Full-time

Medical, Dental, Vision, PTO

Re-posted 18 days ago


Job description

Job Description

Principal Machine Learning Engineer, Artificial Intelligence (AI) Required, Work From Home

As a Principal Machine Learning Engineer, you are a deep technical authority responsible for designing and evolving the most critical ML systems in the company.  The Principal Machine Learning Engineer will operate across training, inference, evaluation, and infrastructure, solving the hardest architectural and performance problems.  While Technical Leads may own execution at the team level, you set the technical standard and shape how ML systems are built across the organization.  This is a hands-on, high-impact role focused on depth.  This position is 100% Remote.

Principal Machine Learning Engineer Responsibilities:

- Architect and build large-scale ML systems spanning data, training, evaluation, inference, and deployment.

- Design reproducible, high-performance training pipelines across GPU infrastructure.

- Architect inference systems that balance latency, throughput, cost, and reliability at scale.

- Design and maintain data systems for high-quality synthetic and real-world training data.

- Implement evaluation pipelines covering performance, robustness, safety, and bias, in partnership with research leadership.

- Own production deployment, including GPU optimization, memory efficiency, latency reduction, and scaling policies.

- Collaborate closely with application engineering to integrate ML systems cleanly into backend, mobile, and desktop products.

- Make pragmatic trade-offs and ship improvements quickly, learning from real usage.

- Work under real production constraints: latency, cost, reliability, and safety

Principal Machine Learning Engineer Outcomes:

- ML systems (training, inference, evaluation) are reliable, scalable, and meet defined performance targets.

- Models deployed to production achieve measurable quality improvements and meet user-impact goals.

- Production issues are proactively monitored, debugged, and resolved with clear root-cause analysis.

- Team and cross-functional collaborators benefit from clear guidance, best practices, and scalable ML solutions.

- Research-to-production cycles are efficient, safe, and continuously improve the product experience.

Qualifications

Principal Machine Learning Engineer Qualifications:

- Strong background in deep learning and transformer-based architectures.

- Artificial Intelligence (AI) experience required.

- Hands-on experience training, fine-tuning, or deploying large-scale ML models in production.

- Proficiency with at least one modern ML framework (e.g. PyTorch, JAX), and ability to learn others quickly.

- Experience with distributed training and inference frameworks (e.g. DeepSpeed, FSDP, Megatron, ZeRO, Ray).

- Strong software engineering fundamentals; you write robust, maintainable, production-grade systems.

- Experience with GPU optimization, including memory efficiency, quantization, and mixed precision.

- Comfort owning ambiguous, zero-to-one ML systems end-to-end.

- A bias toward shipping, learning fast, and improving systems through iteration.

- Experience with LLM inference frameworks such as vLLM, TensorRT-LLM, or FasterTransformer.

- Contributions to open-source ML or systems libraries.

- Background in scientific computing, compilers, or GPU kernels.

- Experience with RLHF pipelines (PPO, DPO, ORPO).

- Experience training or deploying multimodal or diffusion models.

- Experience with large-scale data processing (Apache Arrow, Spark, Ray).

Benefits include medical insurance, Dental, Vision, Savings Plan Options, PTO, etc.

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