Senior AI Engineer
Devsavant
Posted: February 23, 2026
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Quick Summary
DevSavant is an operating partner for startups and growth-stage companies, helping them turn ambition into execution.
Required Skills
Job Description
*Only candidates based in APAC will be considered for this position.
About DevSavant
DevSavant is an operating partner for startups and growth-stage companies, helping them turn ambition into execution.
We support founders and leadership teams with product engineering and global staffing, from early prototypes and MVPs to scaling high-performing teams. Our vetted talent across LATAM and Asia embeds directly into client teams, operating as true extensions rather than external vendors.
With over 8 years working in venture-backed ecosystems, DevSavant is trusted to accelerate delivery, scale teams efficiently, and support companies as they reach their next milestone.
Key Responsibilities
Agentic AI & Conversational Systems
• Design and deploy healthcare-focused Agentic AI systems capable of autonomous, multi-step task execution (e.g., appointment scheduling, eligibility verification, intake automation, triage routing).
• Architect and optimize LLM-powered conversational agents across voice and digital channels.
• Develop Retrieval-Augmented Generation (RAG) architectures to power contextual, domain-specific healthcare knowledge systems.
• Engineer robust prompt frameworks, safety guardrails, and evaluation pipelines tailored to regulated healthcare environments.
• Continuously evaluate and improve agent performance, accuracy, and safety through structured experimentation and analytics.
Voice Automation & Infrastructure
• Architect advanced IVR modernization strategies and intelligent voice workflows.
• Optimize ASR (speech-to-text) and TTS (text-to-speech) systems to meet healthcare-grade accuracy and reliability standards.
• Integrate conversational AI into enterprise contact center platforms and CPaaS environments.
• Ensure seamless interoperability with EHR/EMR systems using healthcare standards such as FHIR and HL7.
• Design scalable, fault-tolerant architectures supporting high-availability healthcare operations.
Healthcare AI & Compliance
• Develop NLP pipelines for clinical document summarization, coding support, PHI detection, and structured data extraction.
• Architect HIPAA-compliant AI systems with secure data handling, encryption, and role-based access controls.
• Implement monitoring, observability, and analytics frameworks to measure operational efficiency and patient experience outcomes.
• Maintain alignment with evolving healthcare AI regulatory and compliance requirements.
Platform & Developer Enablement
• Contribute reusable AI templates that power no-code and low-code deployment models.
• Build and maintain APIs and SDK integrations that allow enterprise customers to embed AI capabilities rapidly.
• Collaborate cross-functionally with product, solution engineering, and co-creation teams to accelerate customer time-to-value.
• Mentor junior engineers and define best practices for deploying Agentic AI in regulated industries.
• Provide internal technical leadership on scalable AI architecture and deployment standards.
Required Qualifications
• 7+ years of experience in AI/ML engineering.
• 3+ years deploying AI solutions within healthcare or other regulated industries.
• Proven experience designing and deploying LLM architectures, including fine-tuning and advanced prompt engineering.
• Hands-on experience with voice automation systems (IVR, ASR, TTS).
• Experience integrating AI systems with enterprise platforms such as EHRs, CRMs, and contact centers.
• Strong Python expertise and experience with ML frameworks such as PyTorch, TensorFlow, and Hugging Face.
• Experience deploying AI solutions in cloud-native environments (AWS, GCP, or Azure).
• Strong understanding of secure system design and data privacy principles.
Nice to Have
• Experience building AI agents capable of autonomous, multi-step workflows.
• Deep knowledge of healthcare interoperability standards (FHIR, HL7).
• Experience working with vector databases and semantic search architectures.
• Familiarity with FDA software guidance (SaMD).
• Background in conversational analytics and customer experience optimization.
• Experience contributing to reusable AI frameworks that support low-code/no-code platforms.
• Proven track record of delivering production-grade AI systems in high-compliance environments.