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Verified Job Engineering - Architecture

ABCO Facility Maintenance Cloud Solutions Architect / Database Engineer / AI Platform Architect

Alexander, Arkansas
Engineering - Architecture
#802835
Remote / WFH
ABCO Facility Maintenance

Job Description

Job highlights
Identified by Google from the original job post
Qualifications
The ideal candidate will have deep expertise in cloud architecture, C#/.NET, SQL Server, database engineering, REST APIs, application security, authentication, Azure or AWS, enterprise integrations, and production AI architecture
This individual should be capable of taking business and application requirements and translating them into secure, scalable, production-ready technical solutions
Experience with AI and Large Language Model (LLM) platforms is required, particularly when designing the infrastructure, data access, security, APIs, and application architecture necessary to support AI-powered enterprise solutions
The ideal candidate will have hands-on experience building production AI applications using OpenAI, Azure OpenAI, Anthropic, Google AI, or comparable LLM technologies, including designing workflows that enable AI to execute complex business processes through structured instructions, examples, retrieval strategies, orchestration, and enterprise data integration
This role requires experience developing AI as an operational component of an application, not simply integrating an AI API or adding chatbot functionality
NET Core, and related .NET technologies
Benefits
Compensation for this role will be between $150k-$180k depending on experience
Responsibilities
This role will be responsible for establishing scalable cloud architecture, designing and engineering production databases, developing secure APIs and integration services, implementing authentication and application security standards, and architecting the AI foundation of our applications
The architect will build the backend and AI service layers that allow front-end developers to securely and efficiently consume application data, business functionality, and AI-powered capabilities
Architect and implement scalable, secure, and highly available cloud environments for enterprise applications
Design the overall backend architecture supporting web applications, internal systems, integrations, and AI-powered solutions
Design, build, and maintain production database environments, including schemas, tables, relationships, stored procedures, views, indexing strategies, and data-access patterns
Develop and optimize SQL Server databases for performance, scalability, reliability, data integrity, and security
Establish database standards covering data modeling, normalization, indexing, query optimization, auditing, backup, recovery, and disaster recovery
Design and develop secure RESTful APIs and backend services using C#, ASP
Build well-structured API and service layers that allow front-end developers to consume data and business functionality without requiring direct access to backend systems or databases
Define API contracts, request/response models, validation standards, error handling, versioning, documentation, and integration patterns
Implement authentication and authorization solutions using technologies and standards such as OAuth 2.0, OpenID Connect, JWT, SSO, RBAC, and enterprise identity providers
Design and enforce application and API security standards, including SSL/TLS, encryption, secrets management, certificate management, secure configuration, and least-privilege access
Implement secure communication between cloud services, databases, APIs, external systems, AI services, and front-end applications
Design cloud networking and infrastructure components including application hosting, databases, storage, identity, networking, firewalls, gateways, load balancing, monitoring, logging, and availability strategies
Develop integration architectures for internal systems, third-party applications, vendor APIs, and enterprise platforms
Design data pipelines, ETL processes, data transformation services, and system-to-system integrations where required
Establish logging, monitoring, auditing, alerting, and observability standards across backend services and cloud infrastructure
Design scalable architectures capable of supporting increasing users, transaction volumes, data volumes, integrations, AI workloads, and application workloads
Implement caching, asynchronous processing, queues, background services, and other distributed architecture patterns when appropriate
Develop and maintain CI/CD pipelines and infrastructure deployment processes
Work closely with front-end developers to define API requirements, data contracts, authentication flows, AI service interactions, and integration standards
Design and implement AI workflow architectures that enable Large Language Models to perform complex business functions by defining process sequences, system instructions, prompt strategies, retrieval mechanisms, examples, evaluation methods, tool interactions, and orchestration workflows
Architect AI systems capable of incorporating enterprise knowledge and business processes through structured process definitions, contextual examples, retrieval, tool use, and iterative refinement so that AI can reliably execute operational business tasks
Design Retrieval-Augmented Generation (RAG) architectures that securely retrieve relevant enterprise information from databases, documents, APIs, vector stores, and other approved business data sources
Design secure AI integration patterns that control how LLMs access enterprise databases, APIs, internal systems, and sensitive business information
Establish AI evaluation, testing, monitoring, and quality standards to measure accuracy, reliability, consistency, security, and effectiveness of AI-powered workflows
Collaborate with business stakeholders and development teams to translate application requirements and business processes into technical and AI architectures
Evaluate technical risks, scalability requirements, security concerns, infrastructure costs, AI usage costs, and architectural tradeoffs
Conduct architecture and code reviews and establish backend, database, API, cloud, security, and AI development standards
Provide technical leadership and mentoring to developers working within the architecture
Job description
We are seeking a highly experienced Cloud Solutions Architect / Database Engineer / AI Platform Architect to design and build the cloud, database, security, API, and AI infrastructure that supports our enterprise applications. Compensation for this role will be between $150k-$180k depending on experience.

This role will be responsible for establishing scalable cloud architecture, designing and engineering production databases, developing secure APIs and integration services, implementing authentication and application security standards, and architecting the AI foundation of our applications. The architect will build the backend and AI service layers that allow front-end developers to securely and efficiently consume application data, business functionality, and AI-powered capabilities.

The ideal candidate will have deep expertise in cloud architecture, C#/.NET, SQL Server, database engineering, REST APIs, application security, authentication, Azure or AWS, enterprise integrations, and production AI architecture. This individual should be capable of taking business and application requirements and translating them into secure, scalable, production-ready technical solutions.

Experience with AI and Large Language Model (LLM) platforms is required, particularly when designing the infrastructure, data access, security, APIs, and application architecture necessary to support AI-powered enterprise solutions. The ideal candidate will have hands-on experience building production AI applications using OpenAI, Azure OpenAI, Anthropic, Google AI, or comparable LLM technologies, including designing workflows that enable AI to execute complex business processes through structured instructions, examples, retrieval strategies, orchestration, and enterprise data integration. This role requires experience developing AI as an operational component of an application, not simply integrating an AI API or adding chatbot functionality.

Responsibilities
• Architect and implement scalable, secure, and highly available cloud environments for enterprise applications.
• Design the overall backend architecture supporting web applications, internal systems, integrations, and AI-powered solutions.
• Design, build, and maintain production database environments, including schemas, tables, relationships, stored procedures, views, indexing strategies, and data-access patterns.
• Develop and optimize SQL Server databases for performance, scalability, reliability, data integrity, and security.
• Establish database standards covering data modeling, normalization, indexing, query optimization, auditing, backup, recovery, and disaster recovery.
• Design and develop secure RESTful APIs and backend services using C#, ASP.NET Core, and related .NET technologies.
• Build well-structured API and service layers that allow front-end developers to consume data and business functionality without requiring direct access to backend systems or databases.
• Define API contracts, request/response models, validation standards, error handling, versioning, documentation, and integration patterns.
• Implement authentication and authorization solutions using technologies and standards such as OAuth 2.0, OpenID Connect, JWT, SSO, RBAC, and enterprise identity providers.
• Design and enforce application and API security standards, including SSL/TLS, encryption, secrets management, certificate management, secure configuration, and least-privilege access.
• Implement secure communication between cloud services, databases, APIs, external systems, AI services, and front-end applications.
• Design cloud networking and infrastructure components including application hosting, databases, storage, identity, networking, firewalls, gateways, load balancing, monitoring, logging, and availability strategies.
• Develop integration architectures for internal systems, third-party applications, vendor APIs, and enterprise platforms.
• Design data pipelines, ETL processes, data transformation services, and system-to-system integrations where required.
• Establish logging, monitoring, auditing, alerting, and observability standards across backend services and cloud infrastructure.
• Design scalable architectures capable of supporting increasing users, transaction volumes, data volumes, integrations, AI workloads, and application workloads.
• Implement caching, asynchronous processing, queues, background services, and other distributed architecture patterns when appropriate.
• Develop and maintain CI/CD pipelines and infrastructure deployment processes.
• Work closely with front-end developers to define API requirements, data contracts, authentication flows, AI service interactions, and integration standards.
• Design and implement AI workflow architectures that enable Large Language Models to perform complex business functions by defining process sequences, system instructions, prompt strategies, retrieval mechanisms, examples, evaluation methods, tool interactions, and orchestration workflows.
• Architect AI systems capable of incorporating enterprise knowledge and business processes through structured process definitions, contextual examples, retrieval, tool use, and iterative refinement so that AI can reliably execute operational business tasks.
• Design Retrieval-Augmented Generation (RAG) architectures that securely retrieve relevant enterprise information from databases, documents, APIs, vector stores, and other approved business data sources.
• Design secure AI integration patterns that control how LLMs access enterprise databases, APIs, internal systems, and sensitive business information.
• Establish AI evaluation, testing, monitoring, and quality standards to measure accuracy, reliability, consistency, security, and effectiveness of AI-powered workflows.
• Collaborate with business stakeholders and development teams to translate application requirements and business processes into technical and AI architectures.
• Evaluate technical risks, scalability requirements, security concerns, infrastructure costs, AI usage costs, and architectural tradeoffs.
• Conduct architecture and code reviews and establish backend, database, API, cloud, security, and AI development standards.
• Provide technical leadership and mentoring to developers working within the architecture.
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