Tech Lead

Posted 2026-05-06
Remote, USA Full-time Immediate Start

The Tech Lead is responsible for translating product ideas and data science capabilities into production-ready AI solutions. This role partners closely with Product Management and the Data Science Leader to rapidly design, prototype, and ship AI-driven features that deliver measurable business value. This is a highly hands-on technical leadership role focused on speed, pragmatism, and production quality, balancing experimentation with scalable engineering practices. 


 This is a remote opportunity. We are seeking contractors located in LATAM who are comfortable working in an English-speaking professional environment.


Key Responsibilities 


AI Solution Delivery & Architecture 



  • Lead the technical design and implementation of AI-powered product features from concept through production. 



  • Own end-to-end architecture for AI solutions, including data flows, model integration, APIs, and application integration. 



  • Make pragmatic decisions to accelerate delivery while maintaining system integrity. 



  • Ensure AI solutions are secure, observable, scalable, and aligned with platform standards. 


Pod Leadership & Execution 



  • Act as the technical lead for a cross-functional AI Pod. 



  • Break down product requirements into executable technical workstreams and prototypes. 



  • Guide rapid iteration cycles, proofs-of-concept, and MVPs, balancing experimentation with production readiness. 



  • Review code, architecture, and technical decisions to maintain quality and velocity. 


Product & Data Collaboration 



  • Partner closely with Product Management to shape problem definitions, success metrics, and delivery plans. 



  • Collaborate with the Data Science Leader to integrate models, analytics, and data assets into product workflows. 



  • Translate data science outputs into consumable APIs, services, and product features. 



  • Provide technical feedback on feasibility, scope, and tradeoffs during product discovery. 


Operationalization & Quality 



  • Ensure features are production-grade, including monitoring, logging, and performance tracking. 



  • Implement guardrails around AI usage, including reliability, latency, cost controls, and failure modes. 



  • Support experimentation frameworks, A/B testing, and post-launch learning loops. 



  • Drive responsible AI practices, including explainability, bias awareness, and data privacy considerations. 


Technical Standards & Enablement 



  • Define and enforce lightweight engineering standards for AI-enabled systems. 



  • Promote reuse of components, prompts, pipelines, and services across AI initiatives. 



  • Mentor pod engineers on AI-adjacent system design and best practices. 



  • Contribute to internal documentation and shared AI patterns/playbooks. 


 


Required Qualifications 



  • BS or MS in Computer Science, Engineering, or related technical field. 



  • 5+ years of software engineering experience, including leading complex systems. 

  • Strong experience designing and building production APIs and backend services. 

  • Proficiency in Python and at least one backend language (e.g., Java, Node.js, Go). 



  • Experience with cloud-native architectures (AWS, GCP, or Azure). 



  • Solid understanding of data pipelines, model serving, and system observability. 



  • Ability to work closely with product teams in fast-moving, iterative environments. 


 


Preferred Qualifications 



  • Experience working in AI-first or data-driven product teams. 



  • Familiarity with modern LLM platforms, prompt engineering, and agent frameworks. 



  • Experience operationalizing ML models (model serving, monitoring, versioning). 



  • Exposure to experimentation platforms, feature flags, and A/B testing. 

  • Experience in Agile or product-led development environments. 


 

Total monthly compensation:
$3,300$4,000 USD

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