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AI Solutions Architect | US
AI / ML Engineer
• Remote
• Vollzeit
• 📍 Remote US
The AI Solutions Architect serves as the technical and strategic bridge between customers, delivery teams, and executive stakeholders for AI engagements; designs cloud-native AI and data solutions with LLM orchestration and RAG patterns, owning solution design from discovery through handoff.
Responsibilities
- ▹Design cloud-native AI and data solution architectures (reference patterns, data flows, AI/ML workflows, LLM orchestration)
- ▹Translate AI and data architectures into diagrams, executive-ready narratives, and roadmaps
- ▹Advise clients on AI strategy, build-vs-buy decisions, governance, and ethical considerations
- ▹Integrate and orchestrate data across multiple platforms (e.g. Snowflake, BigQuery, Databricks, external APIs)
- ▹Collaborate with ML Engineers and Data Engineers to validate architectural alignment and feasibility
- ▹Conduct architecture reviews and risk assessments; execute course corrections as needed
- ▹Architect AI solutions using LLMs and RAG patterns for interpretable, human-readable outputs
- ▹Mentor junior architects and consultants; contribute to reusable accelerators and internal knowledge base
- ▹Provide technical oversight across multiple client engagements, ensuring consistency and quality
- ▹Provide hands-on guidance to engineering/data teams on API integrations, data pipelines, AI service connectivity
- ▹Stay current on emerging AI platforms, LLM tooling, and cloud-based data services
Requirements
- ▹8+ years in solution architecture, data engineering, or software engineering roles; 3+ years architecting AI/ML solutions in production
- ▹Proven experience designing cloud-native AI solutions and integrations across AWS, Azure, or GCP, including data platform integration, LLM orchestration, and secure API connectivity
- ▹Hands-on experience with at least two of: deep-learning frameworks (TensorFlow, PyTorch, JAX), NLP/LLM stacks (Hugging Face, LangChain, vector databases, RAG patterns), computer-vision pipelines (OpenCV, TorchVision), AutoML & orchestration (Vertex AI, SageMaker, MLflow, Kubeflow, Airflow)
- ▹Solid grounding in data modeling, API design (REST/GraphQL), containerization (Docker, Kubernetes), and IaC (Terraform, CloudFormation, or Pulumi)
- ▹Exceptional communication skills across engineering and executive levels
- ▹Bachelor's degree in Computer Science, Engineering, or related field (or equivalent experience)
- ▹Consulting or professional-services experience
Nice to have
- ▹Familiarity with privacy regulations (GDPR/CCPA) and AI governance frameworks (NIST AI RMF, ISO/IEC 42001 draft)
- ▹Track record leading GenAI POCs or production deployments (chatbots, copilots, content generation, autonomous agents)
- ▹Relevant certifications (AWS Solutions Architect Professional, Google Professional Cloud Architect, Microsoft Azure Solutions Architect, TensorFlow Developer)
Soft skills
Architectural systems thinking across data, application, and infrastructure layersStays current on AI/ML techniques and responsible-AI best practicesBuilds client trust quickly, frames solutions around tangible ROIExecution leadership: estimation accuracy, risk mitigation, delivery qualityCollaboration and mentoring, elevating team capability
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