Agentic AI Architect - Intelligence Engineering (Monterrey)

Slalom

Monterrey

Híbrido

MXN 960.698 - 1.310.043

Jornada completa

14 días+

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Ventajas ofrecidas por este puesto de trabajo

Flexible working environment
Collaboration culture

Descripción de la vacante

Slalom is seeking a Software Engineer with a strong focus on AI/ML to join our team in Monterrey, Mexico. The role involves designing AI architectures, leading projects, and mentoring other engineers. Candidates should have 5+ years of software engineering experience, particularly with generative AI and multi-agent systems.

We foster a hybrid working environment, combining independent work with collaborative office days. If you are passionate about AI and eager to contribute to innovative projects, we invite you to apply.

Formación

  • 5+ years of software engineering experience building and deploying production systems.
  • Hands-on experience designing or building multi-agent systems including agent orchestration.
  • Strong Python development skills with proficiency in FastAPI or Flask.

Responsabilidades

  • Provide thought leadership on AI/ML and contribute to a culture of collaboration.
  • Design end-to-end agentic AI architectures and systems.
  • Lead and mentor engineers and machine learning practitioners.

Conocimientos

Software engineering
Machine learning
Generative AI
Python
AI/ML frameworks

Herramientas

AWS
Azure
GCP
FastAPI
Flask

Descripción del empleo

What You’ll Do
  • Provide thought leadership on AI/ML, Generative AI, and Agentic AI internally and with clients, while contributing to a culture of collaboration, learning, and curiosity
  • Design end-to-end agentic AI architectures including planning loops, memory management, tool integration, and agent coordination patterns
  • Architect multi-agent orchestration systems using frameworks such asStrands Agents SDK,OpenAI Agents SDK, Google ADK, LangGraphor similar for autonomous reasoning, decision-making, and task execution
  • Design and implement Model Context Protocol (MCP) server integrations for tool use, data access, and cross-system interoperability with enterprise systems
  • Build advanced retrieval-augmented generation (RAG) systems including vector databases, embedding strategies, chunking optimization, hybrid search, re-ranking, and multi-source data synthesis
  • Design and deliver AI and ML solutions across AWS, Azure, and GCP, using the right mix combination of cloud-native data services, ML tooling, LLM platforms, and software engineering practices
  • Build in Python and, where useful, other languages to deliver machine learning systems, APIs, evaluation harnesses, retrieval pipelines, agent workflows, and production services
  • Recommend and implement architecture for model and agent pipelines, CI/CD, testing, deployment, observability, andMLOps/LLMOpsat scale
  • Implement evaluation frameworks (e.g., RAGAS, DeepEval, LangSmith) to measure task success rates, tool-call accuracy, and reasoning integrity for GenAI systems
  • Build guardrails for safety, compliance, and performance monitoring including human-in-the-loop (HITL) approval workflows, escalation policies, and sandbox isolation
  • Define AI governance frameworks including model risk management, responsible AI practices, regulatory compliance, and authorization boundaries for autonomous decision-making
  • Explain model and system behavior to both technical and non-technical audiences, including leading deep technical presentations, workshops, and architecture conversations
  • Collaborate with Product Owners to apply Slalom’s agile process and lead the initiation, delivery, and transition of projects in a client-facing role
  • Lead and mentor engineers and machine learning practitioners. Lead smaller projects (3 to 5 people) as the technical lead from project initiation to delivery
  • Build trusted relationships with customers and collaborate across Slalom teams to share learnings and strengthen the broader Intelligence Engineering practice
  • Will be delivery-focused approximately 85–95% of the time
  • Willingness to travel up to 50%, at peak times

We are looking for candidates who are interested in working in a hybrid environment as we build the foundation and grow our team in Mexico. We offer a flexible working environment to balance the need to work independently, with days that may require in-person collaboration at our office.

What You’ll Bring
  • 5+ years of software engineering experience building and deploying production systems; experience with machine learning, applied AI, or intelligent software systems is a plus, with 2+ years focused on generative AI, LLMs, or agentic AI systems
  • Hands‑on experience designing or building multi‑agent systems including agent orchestration, tool integration, and autonomous decision‑making workflows
  • Proficiency with at least one agentic AI or workflow framework such asLangGraph,Strands,AutoGen,CrewAI, Semantic Kernel, OpenAI Agents SDK, Google ADK, or similar
  • Experience with RAG architectures including vector databases, embeddings, and retrieval optimization,and context management techniques such as chunking, summarization, and memory handling
  • Experience developing production‑ready solutions on at least one major cloud AI platform, such as AWS Bedrock, Azure AI Foundry/OpenAI Service, GCP Vertex AI/Gemini, or Databricks; experience operating and maintaining production environments is a plus
  • Experience with AI‑assisted development tools such as Claude Code, Cursor, Kiro, or similar IDE‑based coding agents, including effective use for code generation, refactoring, debugging, and developer workflow acceleration
  • Strong Python development skills; experience withFastAPI, Flask, or equivalent API frameworks
  • Experience building ML or AI systems end to end, including data access, feature or retrieval flows, APIs, testing, deployment, and production support
  • Familiarity with evaluation frameworks, tracing, observability, model behavior analysis, and regression testing for GenAI systems
  • Understanding of prompt engineering, LLM fine‑tuning, chain‑of‑thought reasoning, and structured output techniques
  • Recognized as an authority on at least one technical domain (e.g., Agentic Systems, RAG, Multi‑Agent Orchestration) with generalist familiarity across AI/ML techniques
  • Ability to work across new domains and unfamiliar data structures and lead exploratory analysis when requirements are not fully defined
  • Excellent verbal and written communication skills; ability to lead highly technical presentations
  • Familiarity with Agile project delivery
  • (Preferred) Experience with Model Context Protocol (MCP) server development and integration
  • (Preferred) Experience with MLOps/LLMOps pipelines, CI/CD for ML, and model monitoring/observability
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