Lead AI Software Engineer, Technology & Digital, FT, 8:30A - 5P

Baptist Health

Coral Gables (FL)

On-site

USD 126,000 - 164,000

Full time

14 days+

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Benefits offered by this job

Career growth and development
Comprehensive health and wellness
Tuition reimbursement
Wellness program to reduce deductible

Job summary

Baptist Health in Coral Gables, FL, is seeking a Lead AI Software Engineer to set the technical bar for AI-native software across cloud platforms. This hands-on role combines architecture, security, and leadership to deliver agentic AI capabilities, tool integration, and scalable systems on Google Cloud.

The ideal candidate will drive spec-driven development, mentor engineers, and partner with architecture, security, and product stakeholders to deliver measurable outcomes.

Qualifications

  • Bachelor's degree or higher in Computer Science or equivalent is required.
  • 10+ years of professional software engineering experience, with a strong track record of shipping production systems.
  • Deep, hands-on Google Cloud (GCP) expertise — compute, networking, IAM, data, and the AI/ML stack.
  • Domain depth in Gemini and Vertex AI — grounding/RAG, tool calling, and agent development.
  • Extensive hands-on experience with AI coding agents — Claude Code, Codex, Antigravity, or equivalent.
  • Proven system-architecture ability — security, high availability, scalability, fault tolerance, and cost-efficiency.
  • Hands-on Agent Gateway / MCP gateway experience — governance, routing, auth, and observability.

Responsibilities

  • Architect AI-native systems on Google Cloud with security and reliability as core goals.
  • Drive spec-driven development, translating intent into executable specifications.
  • Build with agentic AI, enabling multi-agent orchestration and tool use.
  • Move fast on research and POCs, running structured experiments and gathering evidence.
  • Engineer the model layer with Gemini and Vertex AI, including prompt and context engineering.
  • Make security-by-design a priority, including identity management and data protection.
  • Own quality and observability with evaluation harnesses, regression suites, and AI observability.
  • Lead technically within the AI foundation team, mentoring engineers and setting standards.

Skills

AI-native design
Google Cloud (GCP)
Security
Observability
Leadership
Communication
CI/CD
Agent/Gateway experience

Education

Bachelor's degree in Computer Science or equivalent

Tools

Claude Code
Codex
Antigravity
Vertex AI
Gemini
Apigee X
Terraform
GitHub CI/CD
MCP gateway / Model Context Protocol

Job description

Baptist Health is the region's largest not-for-profit healthcare organization, with 12 hospitals, over 29,000 employees, 4,500 physicians and 200 outpatient centers, urgent care facilities and physician practices across Miami-Dade, Monroe, Broward and Palm Beach counties. With internationally renowned centers of excellence in cancer, cardiovascular care, orthopedics and sports medicine, and neurosciences, Baptist Health is supported by philanthropy and driven by its faith-based mission of medical excellence. For 26 years, we've been named one of Fortune's 100 Best Companies to Work For, and in the 2025-2026 U.S. News & World Report Best Hospital Rankings, Baptist Health was the most awarded healthcare system in South Florida, earning 63 high-performing honors.

What truly sets us apart is our people. At Baptist Health, we create personal connections with our colleagues that go beyond the workplace, and we form meaningful relationships with patients and their families that extend beyond delivering care. Many of us have walked in our patients' shoes ourselves and that shared experience fuels out commitment to compassion and quality. Our culture is rooted in purpose, and every team member plays a part in making a positive impact – because when it comes to caring for people, we're all in.

Benefits

At Baptist Health, we’re committed to supporting our employees at every stage of their journey, both personally and professionally. Our approach is rooted in a “grow our own” philosophy, designed to help our team members build meaningful, long-term careers with us, supported by benefits that make a real difference, including:

  • Career growth and development opportunities, with clear pathways and ongoing support
  • Comprehensive health and wellness resources that go beyond traditional benefits
  • A wellness program that can help employees eliminate their medical plan deductible, reducing out-of-pocket healthcare costs
  • Tuition reimbursement to support continued learning and advancement
  • And so much more

Together, these benefits and others reflect our commitment to caring for our people, so they can build fulfilling careers with us while making a meaningful impact every day.

Description

The Lead AI Software Engineer will set the technical bar for design, build, and ship AI-native software. This is a hands-on, deeply technical role for an engineer who lives at the intersection of cloud platform architecture, generative and agentic AI, and AI-accelerated software delivery.

This is a future-facing role. The toolchain, models, and frameworks named below will evolve — we are hiring for the judgment, depth, and adaptability to evolve with them and to lead others through that change.

________________________________________

What You'll Do

Architect AI-native systems. Design secure, highly available, scalable applications and platforms on Google Cloud — from reference architecture through production. Own the hard decisions around availability targets, failure modes, data flow, latency, cost, and blast-radius containment.

Drive spec-driven development. Establish and champion an AI spec-driven development framework (e.g., BMAD Method, OpenSpec, GitHub Spec Kit) as the team's delivery discipline — translating intent into executable specifications that humans and AI agents build against, review against, and verify against.

Build with agentic AI. Design and deliver agentic systems: multi-agent orchestration, tool use, and retrieval — using the Agent2Agent (A2A) protocol for agent-to-agent interoperability and the Model Context Protocol (MCP) for tool and context integration, routed and governed through an agent / MCP gateway. Treat agents as first-class production software, with the same rigor for security, observability, and reliability as any other critical system.

Move fast on research and POCs. Use AI coding agents (Claude Code, Codex, Antigravity, and successors) to compress the cycle from idea to working prototype to validated POC. Run structured experiments, evaluate models and approaches, and bring back evidence, not opinions.

Engineer for the model layer. Apply Gemini and Vertex AI deeply - prompt and context engineering, grounding/RAG, tool calling, function/agent design, fine-tuning where warranted, and model selection trade-offs across quality, cost, and latency.

Make it secure by design. Bake security and privacy controls into the architecture from day one, not as an afterthought, including agent identity and access management (verifiable, least-privilege, fully auditable identities and credentials for AI agents and other non-human workloads), data loss prevention, prompt-injection and jailbreak defenses, and content/safety filtering.

Own quality and observability. Stand up evaluation harnesses, regression suites, and AI observability (quality/drift monitoring, tracing, FinOps/cost visibility) so that AI behavior is measurable, traceable, and accountable in production.

Lead technically. Be part of core AI foundation team to set engineering standards, review designs and code (human- and AI-generated), mentor engineers on AI-native practices, and raise the team's collective ceiling. Partner with architecture, security, platform, and product stakeholders to land outcomes.

Estimated salary range for this position is $126148.63 - $163993.22 / year depending on experience.

Qualifications

Degrees:

  • Bachelors.

Additional Qualifications

  • Bachelor's degree or higher in Computer Science or equivalent is required.
  • 10+ years of professional software engineering experience, with a strong track record of shipping production systems (not just prototypes).
  • Deep, hands-on Google Cloud (GCP) expertise — compute, networking, IAM, data, and the AI/ML stack. Able to architect a secure, high-availability system on GCP and defend the design.
  • Domain depth in Gemini and Vertex AI — building real applications on the platform, including grounding/RAG, tool/function calling, and agent development.
  • Extensive hands-on experience with AI coding agents — Claude Code, Codex, Antigravity, or equivalent — used for serious development, research, and rapid POC work (not casual autocomplete). You can speak to how you structure work for agents and where they help vs. hurt.
  • Proven system-architecture ability — designing for security, high availability, scalability, fault tolerance, and cost-efficiency. Comfortable with distributed systems fundamentals and trade-off analysis.
  • Hands-on Agent Gateway / MCP gateway experience — building, deploying, or operating an agent or Model Context Protocol (MCP) gateway as the governed control point for agent and tool traffic, including agents that interoperate over the Agent2Agent (A2A) protocol and tools/context exposed via MCP. This includes centralized routing, authentication and authorization, agent/tool registration and discovery, rate limiting and quotas, policy enforcement, and observability across agent-to-tool and agent-to-agent calls (e.g., Apigee X or equivalent gateway).
  • Spec-driven / AI-assisted delivery experience — you have used (or stood up) a structured framework for building software with AI agents and can articulate why specifications-as-source-of-truth matters.
  • Strong software-engineering fundamentals — at least one modern language at expert level (e.g., Python, Go, TypeScript/Node, Java), API design, testing, CI/CD, and Git-based workflows.
  • Security-first mindset — secure SDLC, secrets management, least-privilege design, agent/non-human identity and access management, and awareness of AI-specific threats (prompt injection, data exfiltration, model abuse).
  • Excellent communication — able to explain complex architecture to engineers and executives, write clear specs and design docs, and influence without authority. ________________________________________

Preferred / Bonus Qualifications

  • Depth at the gateway layer — Apigee X (or equivalent) experience using native proxy generation, MCP/agent gateway patterns, and AI-traffic governance at enterprise scale.
  • Agent-platform & tooling — building standardized tools, skills and integration layers, agent registries, and reusable agent frameworks for other teams to consume.
  • AI safety & governance tooling — DLP, AI safety/guardrail filters (e.g., Model Armor), and responsible-AI practices.
  • AI observability & FinOps — drift/quality monitoring, evaluation pipelines, OpenTelemetry, and cost governance for LLM workloads.
  • Regulated / compliance-heavy domain experience — building and operating systems in environments with strict data-protection, audit, and governance requirements.
  • Scaled delivery context — SAFe or other scaled-agile environments; partnering with enterprise architecture and capital planning.
  • GitLab / GitHub CI-CD at scale, and IaC (Terraform).
  • Relevant certifications — Google Cloud Professional (Cloud Architect, ML Engineer, or equivalent).
  • Open-source contributions, research, or public artifacts in AI engineering, agents, or developer tooling.

Minimum Required Experience: 10 Years

EOE, including disability/vets
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