
201 - 500 employees
Founded 2005
âïž SaaS
đ Real Estate
đ€ B2B
đ° Private Equity Round - CINC Systems on 2023-12
SaaS âą Real Estate âą B2B
CINC Systems is a cloud-based, all-in-one software platform for community association management (HOAs and COAs) that helps management companies, boards, and homeowners streamline operations and improve resident experience. The platform provides financial management and oversight (including online payments and a secure payment portal), AI-driven reporting and forecasting (Cephai), communication and resident engagement tools, online voting and surveys, maintenance/work-order coordination, compliance tracking, and centralized data and insights. CINC targets professional association management firms and homeowner boards with automation, security, and scalability; the company reports 1,000+ association management company customers, 51,000+ homeowner associations served, 6M+ doors, and $11B+ payments processed annually.
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201 - 500 employees
Founded 2005
âïž SaaS
đ Real Estate
đ€ B2B
đ° Private Equity Round - CINC Systems on 2023-12
SaaS âą Real Estate âą B2B
CINC Systems is a cloud-based, all-in-one software platform for community association management (HOAs and COAs) that helps management companies, boards, and homeowners streamline operations and improve resident experience. The platform provides financial management and oversight (including online payments and a secure payment portal), AI-driven reporting and forecasting (Cephai), communication and resident engagement tools, online voting and surveys, maintenance/work-order coordination, compliance tracking, and centralized data and insights. CINC targets professional association management firms and homeowner boards with automation, security, and scalability; the company reports 1,000+ association management company customers, 51,000+ homeowner associations served, 6M+ doors, and $11B+ payments processed annually.
âą Design and build robust, scalable, and secure data pipelines for analytics, APIs, and AI applications âą Architect and maintain modern data infrastructure across cloud environments, with AWS preferred âą Partner with AI and application engineering teams to provide structured, high-quality data for training, inference, and real-time decision systems âą Develop and maintain data models and schemas for analytics and operational use âą Design data contracts and governance patterns supporting data lineage, versioning, and reliability across microservices and AI systems âą Build streaming and event-driven data architectures for low-latency, high-integrity data flows âą Implement data quality automation and observability systems to detect anomalies and validate pipeline health âą Work with Product and Analytics to define KPIs, metrics, and usage data pipelines âą Collaborate with AI engineers on embedding pipelines, RAG data sources, and feature stores âą Improve data engineering practices through code reviews, pairing, and knowledge sharing âą Participate in architecture reviews and contribute to standards for data security, compliance, and scalability âą Use AI-native tools and techniques for data classification, anomaly detection, and metadata enrichment
âą 8+ years of experience in data engineering or backend software engineering with a strong focus on large-scale data systems âą Advanced proficiency in SQL and one or more programming languages such as Python, TypeScript, or Java âą Experience designing and operating event-driven data architectures and microservices using AWS services (EventBridge, S3, Lambda, API Gateway, DynamoDB, Glue) âą Strong understanding of relational and analytical databases including SQL Server, Postgres, or Redshift âą Experience building and maintaining ETL and ELT pipelines with strong data modeling, versioning, and testing practices âą Familiarity with AI and ML data patterns including embeddings, feature stores, and RAG pipelines âą Knowledge of API-based data access and GraphQL or REST API design principles âą Experience applying DevOps principles to data engineering including CI/CD pipelines, IaC, and observability âą Understanding of data governance, access control, and privacy best practices âą Experience supporting AI and ML applications in production, including integration with APIs like OpenAI, Anthropic, or Bedrock âą Practical understanding of how data quality and architecture affect AI outcomes and product experiences âą Ability to design pipelines that deliver data optimized for model training, fine-tuning, and real-time inference âą Experience working with vector databases such as Weaviate, Pinecone, or Postgres pgvector âą Skilled at identifying opportunities to use automation and AI to improve data engineering workflows âą Hands-on engineering approach and ability to lead by doing âą Excellent communication and ability to bridge engineering, product, and analytics teams âą Ability to diagnose system constraints and simplify complex data flows âą Collaborative mindset, strong ownership, and focus on measurable business impact âą Comfortable mentoring others and setting standards for data craftsmanship across teams
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