Forward Deployed Engineer (AI) - Uruguay

Posted 16 Days Ago
Be an Early Applicant
Hiring Remotely in Uruguay
Remote
Mid level
Information Technology • Software • Cybersecurity
The Role
The Forward Deployed Engineer will design data architecture for AI systems, build ETL/ELT pipelines, and integrate AI into client environments while collaborating directly with clients to solve complex problems.
Summary Generated by Built In
About NextLink Labs

NextLink Labs is a fast growing technology firm focused on helping companies build, scale, and secure their software applications and organizations. We believe that in order for companies, teams, and products to succeed, technology must be utilized effectively and securely. We pride ourselves in helping our clients win in their respective industries.

As a remote-first company with team members spread out all across the country, NextLink Labs continuously works to ensure our work environment is comfortable and collaborative. We also aim to maintain an inclusive work environment where everyone can thrive professionally and live full lives outside of work.

Position Summary

NextLink Labs is hiring a Forward Deployed Engineer to join our growing AI practice. You'll work directly with clients on the design, build-out, and roll-out of production AI systems, collaborating closely with an AI Architect and focusing on the robust data infrastructure that makes AI applications work in the real world, using tools like Airflow, Snowflake, BigQuery, and Databricks.

As a "forward deployed" engineer, you'll sit close to the customer's problem: discovering use cases, prototyping rapidly, hardening what works, and shipping it into the client's environment. Your time will be spent on hands-on engineering, delivering ETL/ELT pipelines for AI-powered applications, RAG pipelines, agentic workflows, and the supporting cloud infrastructure. This role has a strong consultative dimension and is distinct from pure backend development or pure research positions.

Key Responsibilities

As a Forward Deployed Engineer, you'll partner directly with clients to translate ambiguous business problems into production AI systems. You'll build the data infrastructure that underpins AI applications, develop RAG and agentic workflows on top of modern LLMs, write the evaluation suites and guardrails that keep those systems safe and performant, and integrate the whole thing into clients' existing software environments.

Between and during engagements, you'll contribute to NextLink's internal accelerators and reference implementations so the broader AI practice gets stronger over time. You'll need to be technically deep, comfortable in ambiguity, and energized by direct client contact.

What You'll Do

Data Engineering

  • Design and build robust ETL/ELT pipelines and data infrastructure for AI-powered applications, ensuring high quality and availability of data

  • Implement end-to-end data pipelines for Retrieval-Augmented Generation (RAG), including data ingestion, chunking, embedding generation, vector store management, and retrieval optimization

ML Ops and Production Systems

  • Write evaluation suites and guardrails to measure quality, safety, cost, and latency before and after deployment

  • Integrate AI components into existing client systems via REST/GraphQL APIs, event streams, and cloud-native services on AWS, Azure, or GCP

Applied AI Engineering

  • Build production-grade applications on top of LLMs (Claude, GPT, open-source models), including chat interfaces, copilots, agents, and back-office automation

  • Develop agentic workflows using frameworks such as the Claude Agent SDK, LangGraph, or comparable tools, including tool use, planning, and multi-step orchestration

  • Run rapid prototyping sprints with clients, getting something demo-able in days, then iterating toward production

  • Document architectures, share learnings with the broader NextLink AI practice, and contribute to internal accelerators and reference implementations

Required Qualifications
  • 3–5 years of professional software engineering experience, with at least 1 year shipping AI/ML or LLM-based features to production

  • Strong Python skills; comfort with at least one of TypeScript/JavaScript, Go, or Java for integration work

  • Hands-on experience building applications with modern LLM APIs (Anthropic, OpenAI, Azure OpenAI, AWS Bedrock, etc.)

  • Background with data engineering tooling such as dbt, Airflow, Dagster, Snowflake, BigQuery, or Databricks

  • Working knowledge of RAG patterns, embedding models, and at least one vector store (pgvector, Pinecone, Weaviate, OpenSearch, etc.)

  • Solid grasp of one major cloud platform (AWS, Azure, or GCP), including how to deploy containerized services and manage secrets/IAM

  • Experience writing tests, instrumenting code, and reasoning about observability, including for non-deterministic systems

  • Strong written and verbal English; comfortable presenting technical work to client engineering teams and non-technical stakeholders

  • Customer-facing instincts: you ask good questions, manage ambiguity well, and don't disappear when a problem gets messy

Nice to Have
  • Prior experience in a consulting, agency, or forward-deployed/solutions-engineering role

  • Experience with agent frameworks (Claude Agent SDK, AWS Strands, etc.) and MCP (Model Context Protocol)

  • Familiarity with prompt engineering, evals frameworks, and structured-output techniques

  • Infrastructure-as-Code experience (Terraform, Pulumi, CDK) and CI/CD pipelines

  • Exposure to regulated industries (financial services, healthcare) and the data-handling practices they require

  • Contributions to open-source AI tooling or technical writing/speaking on applied AI topics

Why NextLink Labs
  • We're a technical consulting firm that values clarity, ownership, and outcomes

  • Remote-first, with a strong written communication culture (docs, async updates, clear PRs)

  • Investment in your growth, including access to LLM playgrounds, an internal AI guild, and senior architects to learn from

  • The opportunity to build something big and exciting at the frontier of applied AI

Location & Employment Type
  • Remote, LATAM

  • Long-term independent contractor

  • Significant overlap with US Eastern Time (ET) required

Skills Required

  • 3-5 years of professional software engineering experience
  • at least 1 year shipping AI/ML or LLM-based features to production
  • strong Python skills
  • comfort with at least one of TypeScript, JavaScript, Go, or Java
  • hands-on experience building applications with modern LLM APIs
  • background with data engineering tooling
  • working knowledge of RAG patterns and embedding models
  • solid grasp of one major cloud platform (AWS, Azure, GCP)
  • experience writing tests and instrumenting code
  • strong written and verbal English
  • customer-facing instincts
Am I A Good Fit?
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The Company
HQ: Pittsburgh, Pennsylvania
12 Employees
Year Founded: 2014

What We Do

At NextLink Labs, we help organizations succeed by making hard things easy. Our multidisciplinary expertise in DevSecOps, Software Development, and Application Security ensures we deliver holistic, right-sized solutions tailored to your business needs. We partner with leaders to execute Digital Transformation initiatives — leveraging field-tested expertise to secure, modernize, and future-proof technology ecosystems. What Sets Us Apart: 🔹Multi-disciplinary: We provide holistic solutions by integrating deep expertise in DevSecOps, Software Development, and Application Security, enabling us to align and secure your technology ecosystem. 🔹Depth of Expertise: Our team brings real-world experience from the front lines of technology, delivering solutions that are tried, tested, and tailored to the unique challenges of regulated industries. 🔹Right-sized solutions: We focus on delivering scalable and sustainable results by equipping your team with the tools, knowledge, and confidence to succeed long after our engagement ends. Our Services: 🔹Software Development: Custom applications, cloud-native solutions, and modernization of legacy systems 🔹DevSecOps: CI/CD pipeline buildouts, cloud architecture design, IAAC implementation and Pipeline Security 🔹Application Security: Cloud Configuration, API Security, Container Security and Security Tooling Implementation Technologies: 🔹Software Development: Rails, Django, Python, Ruby, Golang, ReactJS, AngularJS, NodeJS 🔹DevSecOps: GitLab, Docker, Grafana, Hashicorp Terraform, Hashicorp Vault, Helm, Kubernetes, Prometheus 🔹Cloud & Cloud Native: Amazon Web Services (AWS), Microsoft Azure, Google Cloud Platform 🔹Application Modernization: Containerization, Cloud, Cloud Native Implementations, Microservices, Software Architecture

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