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Artificial Intelligence Engineer
Boca Raton, FL
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We are seeking a visionary Senior AI Architect to design and build the intelligent orchestration layers and robust data architectures that power ADT's next-generation AI initiatives. In this role, you will be the driving force behind our enterprise adoption of state-of-the-art LLMs (Gemini Enterprise, OpenAI) and advanced AI orchestration frameworks. Because powerful AI requires exceptional data foundations, you will focus heavily on designing the real-time data pipelines, relational and analytical engines, and retrieval systems necessary to ground our models in reality, leveraging streaming IoT, video, and sensor data. Additionally, you will champion & partner with engineering teams on use of AI-native developer tools like Cursor and Claude Code to hyper-charge our SDLC.
Duties and Responsibilities:
Enterprise AI Strategy:
Architect and deploy scalable AI solutions leveraging Gemini Enterprise, OpenAI, and Anthropic (Claude) models to solve complex business and security challenges.
Build Agentic Systems:
Design and deploy multi-agent AI solutions with advanced orchestration, memory systems, and secure tool integration. Data Architecture for
AI:
Design the underlying data architecture required to feed high-quality, real-time data into AI systems, emphasizing massively scalable relational and analytical data stores.
Real-Time AI Pipelines:
Enable high-throughput processing of streaming IoT, video, sensor, and event data using event streaming and publish-subscribe messaging systems.
Multi-Modal AI Integration:
Apply computer vision, event detection, anomaly detection, and video intelligence to real-world edge and cloud scenarios.
Developer Productivity:
Spearhead the adoption of AI-native development environments, specifically driving the integration of Cursor and Claude Code, Gemini Enterprise alongside tools like Bitbucket & GitHub, into engineering workflows.
RAG & Context Systems:
Architect scalable Retrieval-Augmented Generation (RAG) systems, integrating vector databases and semantic search to ground LLMs in enterprise data.
AI Platform Scale & Efficiency:
Architect secure, scalable, and cost-efficient AI platforms across multi-cloud environments, optimizing model latency, token usage, and system costs.
Responsible AI & Governance:
Implement AI governance, privacy preservation, security protocols, and compliance best practices.
Cross-Functional Leadership:
Partner with Data Engineering, Product, and Security teams to mentor teams, guide architecture decisions, and ensure AI solutions are deeply integrated into ADT's ecosystem.
Qualifications and Requirements:
Education:
Bachelor's degree in Computer Science, Engineering, Data Science, or a related technical field (or an equivalent amount of work experience).
Experience:
15+ years of core experience in software engineering, data engineering, or cloud architecture.
AI/ML Experience:
4+ years of hands-on experience designing and delivering production-grade machine learning or AI systems.
GenAI Experience:
2+ years of direct experience building and deploying GenAI applications, LLMs, or agent-based solutions.
Platform & Integration Ecosystems:
Hands-on experience working with GCP, and familiarity with Salesforce and Oracle Cloud platforms, including their corresponding data services and integration tools.
Enterprise AI Platforms:
Experience with customer experience and service management AI platforms (such as Sierra, Google Agent Assist, or ServiceNow AI) is a strong plus.
System Design:
Proven track record of designing and implementing complex, distributed solutions on multiple enterprise-scale platforms.
LangChain, LangGraph, AutoGen, CrewAI, or custom orchestration frameworks.
AI Developer Tools:
Cursor, Claude Code, GitHub Copilot.
Data Pipelines & Event Streaming:
Apache Kafka and Google Cloud Pub/Sub for real-time messaging, stream processing, and event-driven architectures.
Enterprise Data Stores:
Google Cloud Spanner (for scalable, highly consistent relational data) and Google Cloud BigQuery (for large-scale data warehousing and analytical processing).
GCP, Terraform, Vertex AI, Kubernetes, and modern microservice APIs. Enterprise AI Platforms (Bonus): Sierra, Google Agent Assist, Gemini Enterprise, ServiceNow AI platforms.
Programming Languages:
Strong programming skills in Python, with TypeScript, Java, or Go as a plus.
Certifications:
Cloud or AI certifications (Google, Microsoft, AWS) are highly preferred.
Professional Skills:
Excellent communication, cross-functional collaboration, and creative problem-solving skills.