Netskope

Cloud Security

DistinguishedEngineer,MachineLearning

$147–300k santa clara, villa clara province, cuba
The Brief

“Distinguished Engineer, Machine Learning at Netskope. Skills: AI technical strategy, architecture and deployment of large-scale, production-grade AI/ML solutions, AI/ML inference systems, LLM serving technologies, End-to-End AI Lifecycle, AI models in production. Serve as the chief architect of our AI technical strategy. Lead the architecture and deployment of large-scale, production-grade AI/ML solutions for our Secure Access Service Edge (SASE) architecture”

Industry & Context.

Cloud Security
Problems you'll solve

solve the industry's most challenging AI latency, scalability, and cloud security problems today

What They're Looking For.

Must Have

12-15+ years of industry experience (or equivalent combination of an Advanced technical degree + experience) in architecting and developing AI/ML solutions, Fluency in the modern AI stack with proven, hands-on experience optimizing cutting-edge LLMs in production environments, Ability to translate complex technical architectures and concepts between CXOs, non-technical stakeholders, and Data Scientists, Energetic self-starter with a true startup spirit, demonstrated ability to influence without authority, and the willingness to wear multiple hats to deliver end-to-end solutions in a dynamic, fast-paced environment, Advanced degree (Masters or PhD) in Computer Science, Electrical Engineering, or equivalent technical degree

Nice to Have

preferably on large-scale security products or services, deep knowledge of vLLM, SGLang, and KV Cache optimization

What You'll Do.

Serve as the chief architect of our AI technical strategy

Lead the architecture and deployment of large-scale

production-grade AI/ML solutions for our Secure Access Service Edge (SASE) architecture

Define the AI Transformation Roadmap

Drive the overarching AI/ML technical strategy

ruthlessly prioritizing architectural choices to ensure highly scalable

and production-grade systems

Architect Production-Grade Inference Systems

and deploy highly scalable AI/ML inference systems

leveraging the latest LLM serving technologies such as vLLM

and advanced KV Cache optimization to maximize throughput and minimize latency

Lead the End-to-End AI Lifecycle

Collaborate with ML scientists

and executive stakeholders to translate complex business requirements into industrialized enterprise solutions

Establish Rigorous AI Evaluation

Create strict 'Report Cards' for AI models in production

ensuring models are robust

and well-documented by measuring accuracy

and security relevance before deployment

How You'll Work.

Team & Collaboration

Collaborate with ML scientists, engineers, and executive stakeholders; working alongside top-tier engineers, researchers, and machine learning scientists

Communication Scope

Ability to translate complex technical architectures and concepts between CXOs, non-technical stakeholders, and Data Scientists

Process & Methodology

ruthlessly prioritizing architectural choices

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