AI Data Engineer III

RealPage, Inc.

Manila

On-site

PHP 900,000 - 2,000,000

Full time

12 days ago
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Job summary

RealPage, Inc. is seeking an experienced AI Data Engineer III to design, build, and operate data pipelines, AI agents, and automations for GRC services with a data governance focus. You will implement human-in-the-loop controls and align with risk-management standards.

The role requires 4+ years in software/AI engineering, strong Python skills, and hands-on experience with LLM patterns, RAG, and MCP. Expect collaboration across teams and a focus on scalable, governed automation.

Qualifications

  • Minimum 4+ years in software/AI engineering.
  • Hands-on experience building LLM-powered applications and agentic workflows.
  • Proficiency in Python and modern AI development tooling.
  • Experience with LLM application patterns - prompt engineering, RAG, function/tool calling, MCP.

Responsibilities

  • Build and integrate agentic AI solutions and automations within enterprise GRC platform.
  • Develop control automations, evidence collectors, and governance tooling.
  • Engineer AI-assisted workflows to populate and reconcile Risk Register across domains.
  • Automate linkage between risk entries, controls, and remediation tracking.
  • Build AI-assisted tooling for policy drafting, framework crosswalks, and review cadences.
  • Design agentic workflows with guardrails for accuracy, confidentiality, and IP boundaries.
  • Maintain observability and evaluation harnesses for deployed agents.

Skills

Python
LLM development
Agentic workflows
GRC domain knowledge
Collaboration
Documentation
Communication

Education

Bachelor's degree in Computer Science or related field

Tools

Claude Code
Cursor
GitHub Copilot
ServiceNow IRM
Archer
AuditBoard
AWS Bedrock/SageMaker
Azure AI
GCP Vertex

Job description

Overview

This role reports into Director/Sr. Manager within Technology GRC and is the technical builder behind the function's agentic AI transformation. The AI Data Engineer III designs, builds, and operates the data pipelines, AI agents, and automations that deliver GRC services — with primary focus on the Data Governance capabilities (e.g., data quality, data lineage and data catalog), all operating under a human-in-the-loop model supervised by the responsible GRC leader. The role bridges GRC domain requirements and engineering execution: building the data foundations (ingestion, modeling, quality) that agentic workflows depend on, and prototyping control automations, evidence collectors, and governance tooling that reduce manual effort and enable the team to scale without proportional headcount growth.

Responsibilities

GRC Tool & Automation Engineering

  • Build and integrate agentic AI solutions and automations within the enterprise GRC platform to standardize workflows, automate evidence collection, and improve reporting.
  • Develop control automations, evidence collectors, and governance tooling, reducing dependence on the broader engineering backlog.

Risk Register Automation

  • Engineer AI-assisted workflows to populate, maintain, and reconcile the enterprise Risk Register across technology domains.
  • Automate linkage between risk entries, controls, and remediation tracking.

Policy Governance Automation

  • Build AI-assisted tooling for policy drafting, framework crosswalks, annual review cadence, and exception workflows.

Agent Design, Safety & Operations (Human-in-the-Loop)

  • Design agentic workflows using RAG, function/tool calling, and Model Context Protocol (MCP), with appropriate guardrails for accuracy, confidentiality, and IP boundaries.
  • Implement human-in-the-loop checkpoints and monitoring so GRC leaders can supervise and validate agent outputs.
  • Apply AI risk controls aligned to OWASP Top 10 for LLM Applications, NIST AI RMF, ISO/IEC 42001, and MITRE ATLAS.

Agent Evaluation, Observability & Guardrails

  • Build evaluation harnesses and observability for deployed agents - measuring grounding, accuracy, and consistency while minimizing hallucinations across GRC use cases.
  • Implement guardrails, deployment gates, and immutable audit trails/logging so non-compliant or low-confidence outputs are caught before use.
  • Maintain model documentation (model cards, data provenance) to support AI governance and regulatory defensibility.
Qualifications
  • Bachelor's degree in Computer Science, Software Engineering, Data Science, or a related field; equivalent practical experience considered.
  • Minimum 4+ years in software/AI engineering, with hands-on experience building LLM-powered applications and agentic workflows.
  • Proficiency in Python (or comparable) and modern AI development tooling (e.g., Claude Code, Cursor, GitHub Copilot).
  • Hands-on experience with LLM application patterns - prompt engineering, RAG, function/tool calling, agentic orchestration, and MCP.
  • Familiarity with leading LLMs (Anthropic Claude, OpenAI GPT/o-series, Google Gemini, Meta Llama, Mistral) and model selection trade-offs (reasoning depth, context window, cost, latency, data residency).
  • Working knowledge of the AI/LLM risk landscape: OWASP Top 10 for LLM Applications, NIST AI RMF, ISO/IEC 42001, MITRE ATLAS, and emerging regulation (EU AI Act, NYDFS AI guidance).
  • Experience integrating with enterprise platforms and APIs; familiarity with GRC tooling (e.g., ServiceNow IRM, Archer, AuditBoard) a plus.
  • Ability to translate GRC domain requirements into well-governed, production-grade automations with human-in-the-loop controls.
  • Strong collaboration skills and the ability to partner with non-technical GRC stakeholders.
  • Experience building agent evaluation frameworks, guardrails, prompt/version management, and observability/logging for production LLM systems.
  • Familiarity with cloud ML platforms (AWS Bedrock/SageMaker, Azure AI, GCP Vertex) and CI/CD-integrated deployment gates.
  • AI governance certification a plus (e.g., IAPP AIGP), including agentic architecture concepts.
  • Preferred experience in the Property Management, Multifamily Housing, SaaS, FinTech, or PropTech industries.
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