Lead AI Engineer
Tiger Analytics · United States
Skills in this posting
Extracted from the posting text by the instrument — the demand side, read literally.
The posting
Tiger Analytics is seeking a highly experienced Lead AI Engineer to lead the end-to-end AI Engineering workstream for the Luma platform. This is a hands-on technical leadership role responsible for driving the architecture, design, and delivery of enterprise-scale Agentic AI solutions while serving as the primary technical interface for the client.
The ideal candidate will combine deep expertise in AI engineering, distributed systems, cloud-native architectures, and MLOps with exceptional stakeholder management skills.
This individual will oversee multiple engineering pods, mentor technical teams, drive engineering excellence, and partner closely with client leadership to shape the AI roadmap and ensure successful delivery. Requirements Key Responsibilities
Lead AI architecture and engineering roadmap for Agentic AI platforms.
Design and deliver scalable, production-grade AI solutions.
Oversee AI platform services, backend APIs, microservices, MLOps, observability, and cloud infrastructure.
Partner with clients to translate business needs into AI solutions and lead architecture discussions.
Mentor AI engineers, conduct design/code reviews, and drive engineering best practices.
Lead multiple engineering teams, manage delivery, risks, and technical roadmaps.
Evaluate and adopt emerging AI technologies and frameworks.
Required Skills
AI/ML: GenAI, LLMs, Agentic AI, Multi-Agent Systems, RAG, Prompt Engineering, AI Guardrails, MLOps.
Programming: Python (expert), Golang, REST APIs, Async Programming.
Cloud: AWS (Bedrock/AgentCore preferred), Lambda, ECS/EKS, API Gateway, Step Functions, S3, DynamoDB, CloudWatch.
Backend: Microservices, Docker, Kubernetes, Distributed Systems.
Leadership: Client-facing consulting, architecture design, stakeholder management, mentoring, and technical leadership.
Qualifications
10–15+ years in software engineering with 5+ years leading AI/ML engineering teams .
Experience building and deploying enterprise AI platforms on AWS.
Strong client-facing, solution architecture, and cross-functional leadership experience.
Preferred AWS Bedrock, LangGraph, CrewAI, AutoGen, AI Copilots, AI Observability, Enterprise SaaS, and large-scale distributed systems. Benefits Significant career development opportunities exist as the company grows.
The position offers a unique opportunity to be part of a small, fast-growing, challenging and entrepreneurial environment, with a high degree of individual responsibility.
Tiger Analytics provides equal employment opportunities to applicants and employees without regard to race, color, religion, age, sex, sexual orientation, gender identity/expression, pregnancy, national origin, ancestry, marital status, protected veteran status, disability status, or any other basis as protected by federal, state, or local law.
Originally posted on Himalayas
Excerpt from the original listing. The full, current text lives at the source. Read and apply there →
The PivotHop read
- What an ai engineer actually earnsmedian, seniority, by country
- Alternative careers for an ai engineerevery measured route out
- Machine Learning Engineer → AI Engineer58% readiness
- Prompt Engineer → AI Engineer51% readiness
- MLOps Engineer → AI Engineer49% readiness
- All open ai engineer rolesthe full board
Where these skills also reach
Adjacent occupations measured from the same postings — readiness is what an ai engineer’s profile already covers.
- 6 open conversation designer roles69% readiness from ai engineer
- 3 open prompt engineer roles59% readiness from ai engineer
- 39 open developer advocate roles50% readiness from ai engineer
- 39 open data annotator roles50% readiness from ai engineer
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