Engineering Manager AI

Lever, Inc.

Ciudad de México

A distancia

MXN 1.200.000 - 1.800.000

Jornada completa

Hace 3 días
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Ventajas ofrecidas por este puesto de trabajo

Remote work from anywhere
Stock options
Health insurance support
Learning & development platform
Career growth opportunities

Descripción de la vacante

Lever, Inc. Partner invites an Engineering Manager AI to Mexico who will lead a team of AI/ML, backend, and platform engineers. You will shape architecture, guide ML lifecycle processes, and ensure scalable, low‑latency inference for payment‑oriented systems, while upholding high engineering standards.

This hands‑on leadership role combines people management with deep technical involvement to deliver a robust AI‑driven payments platform in a fast‑moving startup environment.

Formación

  • 8+ years of professional software engineering experience.
  • 2–3+ years of leading engineering teams.
  • Proven backend and ML systems experience at scale.
  • Experience hiring, developing, retaining, and managing engineers.
  • Hands‑on familiarity with modern AI/ML systems and LLM workflows.
  • Strong backend, distributed systems, APIs, and production engineering knowledge.
  • Experience with Go, Python, gRPC, REST, and AWS (ECS/EKS, Terraform).
  • Familiarity with PCI‑DSS and data handling in payment contexts.
  • Excellent communication with technical and non‑technical partners.

Responsabilidades

  • Lead a team of AI/ML, backend, and platform engineers including hiring and career development.
  • Coach on designs, architecture decisions, code reviews, and trade-offs.
  • Set high standards for code quality, testing, CI/CD, and development practices.
  • Own delivery planning with accurate costing, sequencing, and commitments.
  • Guide ML model lifecycle practices including training, evaluation, and retraining.
  • Oversee AI workflows: agent orchestration, RAG pipelines, vector DBs.
  • Provide technical oversight for inference services with latency and reliability targets.
  • Ensure AWS infra, observability, dashboards, and on‑call playbooks meet standards.
  • Translate product priorities into executable technical roadmaps.
  • Collaborate with Product, Operations, and Modeling leadership for alignment.

Conocimientos

AI/ML systems
Backend systems
Team leadership
Hiring & people development
LLM workflows / agents / RAG
AWS infrastructure
Observability & reliability
Communication with stakeholders
Cosmetic: architecture decisions

Herramientas

LangGraph
LangChain
Vector databases
Prometheus
Grafana
OpenTelemetry
PyTorch
TensorFlow
XGBoost
scikit-learn

Descripción del empleo

This position is listed on behalf of a partner company, who manages all applications and next steps. Our partner is looking for an Engineering Manager AI based in Mexico .

This is a hands‑on engineering leadership opportunity focused on building intelligent systems that optimize payment performance and power AI‑driven products. You’ll lead a team of approximately 7–8 engineers across AI/ML, backend, and platform engineering. The role combines people leadership with enough technical depth to guide architecture, challenge technical decisions, and help unblock complex engineering problems. You’ll own delivery across scoping, costing, sequencing, and execution while establishing strong standards for quality and engineering practices. You’ll work closely with Product, Operations, Modeling, and senior leadership to turn business priorities into an actionable technical roadmap. The environment is fast‑moving, multicultural, and startup‑oriented, with a strong emphasis on innovation, ownership, and continuous growth.

Accountabilities
  • Lead and grow a team of AI/ML, backend, and platform engineers, including hiring, performance management, coaching, retention, and career development.
  • Coach engineers through technical designs, architecture decisions, code reviews, and complex engineering trade-offs.
  • Establish and maintain high engineering standards across code quality, testing, CI/CD, and development practices.
  • Own delivery planning for the team, including accurate costing, estimation, sequencing, prioritization, and accountability for commitments.
  • Guide architecture for ML model lifecycle processes, including training, evaluation, monitoring, and retraining.
  • Oversee LLM‑powered workflows such as agent orchestration, RAG pipelines, vector database integrations, and related AI systems.
  • Provide technical oversight for inference services supporting live payment routing, ensuring strict latency, reliability, and scalability requirements are met.
  • Ensure AWS infrastructure, CI/CD, observability, dashboards, tracing, and on‑call practices meet strong reliability and operational standards.
  • Apply appropriate PCI-DSS and data‑handling considerations to systems and services that interact with payment data.
  • Translate product vision and business priorities into executable technical roadmaps with clear timelines, scope, and trade‑offs.
  • Partner closely with Product, Operations, and Modeling leadership to maintain alignment and create short feedback loops.
  • Represent the AI/ML engineering team's progress, priorities, risks, and blockers to senior leadership.
Requirements
  • 8+ years of professional software engineering experience, including 2–3+ years managing and leading engineering teams.
  • Proven experience building and shipping backend and/or machine learning systems at scale.
  • Experience hiring, developing, retaining, and managing engineers while balancing people development with delivery objectives.
  • Hands‑on familiarity with modern AI/ML systems, including model training and serving, LLM‑powered workflows, agents, RAG, orchestration, or related technologies.
  • Practical experience with LLM‑based systems in production, particularly agents, RAG pipelines, or AI workflow orchestration.
  • Strong technical understanding of backend systems, distributed architectures, APIs, and production engineering practices.
  • Experience with technologies such as Go, Python, gRPC, REST APIs, event streaming, and distributed systems is valuable.
  • Familiarity with AWS infrastructure and services, including ECS/EKS, Terraform, RDS/Aurora, and S3.
  • Experience with AI/ML technologies such as PyTorch, TensorFlow, XGBoost, scikit‑learn, MLflow, or Weights & Biases is beneficial.
  • Knowledge of LLM and agent technologies such as LangGraph, LangChain, RAG, vector databases, prompt engineering, and LLM evaluation is valuable.
  • Familiarity with observability technologies and practices, including Prometheus, Grafana, OpenTelemetry, structured logging, and on‑call runbooks.
  • Payments, fintech, or experience in another regulated and latency‑sensitive industry is a strong plus, including familiarity with PCI-DSS, tokenization, or payment service provider integrations.
  • Strong communication and stakeholder management skills, with the ability to communicate clearly with both technical and non‑technical partners.
  • Comfortable operating in a rapidly changing startup environment, with the ability to adapt scope, priorities, and communication while maintaining team trust.
  • Strong growth mindset, self‑awareness, and commitment to continuous improvement.
Benefits
  • Vacation and additional paid time off.
  • Remote work from anywhere.
  • Financial support for health insurance, internet, and mobile phone expenses.
  • Stock options.
  • Access to a learning and development platform.
  • Multidisciplinary, diverse, and dynamic team environment.
  • Opportunities for professional growth and career development.
  • Exposure to modern AI, ML, cloud, observability, and payments technologies.
  • Opportunity to contribute to a high‑impact payments platform serving a broad regional market.
  • Startup environment characterized by agility, innovation, ownership, and continuous development.
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