Our company works with organizations to promote data protection best practices within their organization as well as establish compliance with standards such as PCI DSS and regulations such as the European General Data Protection Regulation (GDPR).More than 225,000 users in 100+ countries look to our company for tools, technology, and strategic security support. Founded in 2008 with a decade of service to the hospitality industry, we are a privately held company with regional offices across the United States and internationally. We are currently seeking an AI Applications Engineer - AI Integration to add to our team.
Accountability Summary
As an AI Applications Engineer - AI Integration, you will build the next generation of AI-powered applications for cybersecurity and compliance intelligence. This will include designing and developing backend services that aggregate data across multiple systems, integrate AI capabilities, and deliver predictive insights to enterprise customers.
You will work on a multi-tenant SaaS platform that supports organizations with complex hierarchies and high data demands. Your role will include designing APIs, building AI-powered data processing pipelines, and optimizing large-scale database operations to enable real-time business intelligence.
Duties and Responsibilities
The AI Applications Engineer - AI Integration will be responsible for the following tasks:
Design and build REST APIs in Node.js and PHP to deliver dashboard data and AI-driven insights.
Integrate LLM APIs (e.g., OpenAI, Anthropic, Cohere, Google Gemini, Azure OpenAI) for natural language recommendations, reporting, and risk analysis.
Ability to quickly create Proof-of-Concept code and engage with multiple stakeholders to drive PoC productization.
Develop Python microservices with pandas, numpy for preprocessing, analytics, and statistical modeling.
Implement real-time data aggregation pipelines from existing SQL databases.
Design and optimize database schemas for multi-tenant SaaS and time-series data storage.
Build serverless functions (AWS Lambda) for asynchronous AI processing and pipeline orchestration.
Implement event-driven workflows using SQS, EventBridge, or equivalent messaging systems.
Develop algorithms for pattern recognition, anomaly detection, and trend analysis.
Create predictive models for forecasting and risk scoring.
Implement caching strategies (e.g., Redis) for dashboard performance optimization.
Build automated report generation with PDF export and scheduled delivery.
Optimize SQL queries for high-volume data aggregation across multiple organizations.
Required Qualifications
5+ years backend development experience with production systems at scale.
Hands-on experience with LLM API integrations (OpenAI, Anthropic, Cohere, Google Gemini, or similar).
Strong PHP skills (including legacy system integration) and Node.js for API/microservice development.
Strong Python skills with PyTorch, TensorFlow, pandas, numpy, and data manipulation expertise.• Experience with AWS services (Lambda, ECS, RDS, SQS, EventBridge, S3).
Advanced SQL skills including query optimization, indexing, and schema design.
Experience in REST API design and third-party integrations.
Knowledge of multi-tenant architectures and data isolation strategies.
Experience with real-time systems (WebSockets, message queues, or event streaming).
Proficiency with Git, Docker, and CI/CD pipelines.
Experience with database migration and data synchronization.
Strong understanding of caching strategies and performance optimization.
Preferred Qualifications
Familiarity with prompt engineering and AI optimization techniques.
Experience with AWS AI Infrastructure including Bedrock, SageMaker.
Experience with time series analysis and statistical modeling.
Background in cybersecurity, compliance, or risk management software.
Strong understanding of serverless and event-driven architecture.
Experience with ETL pipelines and orchestration frameworks.
Experience modernizing and refactoring legacy PHP applications.
Experience with business intelligence systems and executive reporting.
Familiarity with anomaly detection algorithms and predictive analytics.
Experience with scaling strategies for SaaS platforms (horizontal scaling, sharding, etc.).
Knowledge of monitoring and observability tools (CloudWatch, logging frameworks).
Compensation
The salary offer to the successful candidate will be based on job-related education, geographic location, training, licensure and certifications, and other factors.
We provide significant career growth, competitive compensation, and a benefits package including generous personal time off, holiday pay, health insurance, and pension.
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