ApplySarthi

Software Engineer Architect – AI Agents (Healthcare)

100Ms

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This role on the market

484 open healthcare roles across 79 companies are on ApplySarthi right now, most of them in Bengaluru (45), Delhi NCR (6), Hyderabad (3).

What healthcare roles keep asking for: AWS (15%) — counted across their open postings here.

AWS jobs · Azure jobs · Data modelling jobs · GCP jobs

100Ms has 10 open roles listed here.

Counted across 14 company job boards, updated as roles open and close.

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Questions you are likely to be asked

  1. Why do you want to join 100Ms?
  2. What is your experience with LLMs? Tell me one thing you learned the hard way.
  3. Tell me about a time the data was messy or wrong. What did you do?
  4. How would you explain your model's result to someone who is not technical?
  5. What would you check first if a model's accuracy dropped after going live?

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About 100ms 100ms is building AI agents that automate complex patient access workflows in U.S. healthcare — starting with benefits verification, prior authorisation, and referral intake in speciality pharmacy. Our platform combines LLM-based agents, deep healthcare domain expertise, and operational infrastructure to help care teams move faster and get patients on treatment sooner. Role Summary: We are looking for a Software Engineer Architect to own the technical architecture of our AI agents platform as it scales. In healthcare, accuracy and trust are everything — our systems make phone calls to payers, handle Protected Health Information, and operate inside real clinical workflows, so the architecture underneath them has to be reliable, observable, secure, and fast to evolve. This is a hands-on, deeply technical role, not a pure design-review position. You will define how our services, data, and agent pipelines fit together; make the build-vs-buy and technology choices that shape the next three years of the platform; write code on the hardest problems; and raise the engineering bar across the team. You will work directly with the founders, product, platform/infrastructure, and security teams, and your decisions will be informed by real customer and clinical workflows. Key Responsibilities: Own the end-to-end architecture of the AI agents platform — services, APIs, data models, async task pipelines, LLM/voice agent orchestration, and integrations with payer systems, EMRs, and telephony. Design for reliability, latency, and safety: define patterns for fault tolerance, idempotency, retries, observability, and graceful degradation across agent workflows that run at scale in production. Set the architecture for multi-tenancy, data isolation, and PHI handling in partnership with our Security and Compliance Lead, keeping HIPAA and SOC 2 requirements designed in rather than bolted on. Make and document high-leverage technical decisions — build vs. buy, service boundaries, storage and queueing choices, LLM provider and inference strategy — through lightweight design reviews and ADRs. Stay hands-on: prototype critical paths, write production code on the most ambiguous and highest-risk problems, and unblock teams when they hit hard technical walls. Partner with the platform team on how workloads run on our Kubernetes (GKE) infrastructure — autoscaling, deployment topology, cost, and SLOs for agent and voice workloads. Raise the engineering bar: mentor senior engineers, drive code and design review culture, and define standards for testing, evaluation, and release safety across teams. Translate product and customer needs into a technical roadmap; work with founders and product to sequence architectural investments against business priorities. De-risk scale: anticipate where the system breaks at 10x call volume, 10x customers, and 10x team size, and lay the groundwork before it does. Requirements: 10+ years of professional software engineering experience, including several years designing and operating large-scale, production distributed systems. A track record of owning architecture for a product or platform end to end — you have made foundational technical decisions, lived with their consequences, and evolved them. Deep expertise in backend systems: service design, RESTful/async APIs, event-driven architectures, task queues, and data modelling across relational and non-relational stores. Strong grasp of reliability engineering — observability, fault tolerance, capacity planning, and incident-informed design — for systems with strict correctness and latency requirements. Hands-on proficiency in at least one of our core languages (Python or Go); comfort reading and reviewing code across the stack, including React-based frontends. Working knowledge of cloud-native infrastructure (GCP/AWS/Azure), Kubernetes, and infrastructure-as-code, and how architectural choices play out operationally. Experience building or integrating AI/LLM-backed systems — or clear evidence you can go deep fast on agent orchestration, evaluation, guardrails, and inference trade-offs. Strong security instincts: you design with data isolation, encryption, access control, and auditability in mind from day one. Excellent written and verbal communication — you can carry a design from whiteboard to ADR to aligned teams, and explain trade-offs to founders and customers alike. Ability to tackle complex, ambiguous technical problems and drive them to crisp decisions. Nice-to-Haves: Experience with voice AI, telephony (SIP/WebRTC), or real-time systems. Prior work in U.S. healthcare or other regulated domains (HIPAA, SOC 2, HITRUST) — familiarity with EMRs, payer integrations, FHIR/HL7. Experience with LLM evaluation frameworks, prompt/fine-tuning pipelines, and hallucination/safety controls in production. Experience scaling engineering teams and architecture together — platformization, service extraction, developer experience. Open-source contributions, technical writing, or conference talks. Why This Role Matters: Every architectural decision here has a direct line to patients getting care faster. The systems you design will determine whether our agents can be trusted with clinical workflows at enterprise scale — and whether a small, sharp team can keep shipping quickly as the platform grows. You will set technical direction at the stage where it compounds the most. Culture & Growth: 100ms is an engineering-first startup. Our team includes former entrepreneurs, AI engineering specialists, and healthcare operations professionals, with experience at major technology companies around the world. You can grow as a senior individual contributor or into technical leadership — you set your own trajectory, with direct access to the founders. We believe in-person collaboration builds better systems and stronger culture: employees work from our Bengaluru office at least three days a week — Tuesday, Wednesday, and Friday. Some overlap with U.S. time zones is expected for customer and partner engagement.

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Listed on lever · posted 2026-08-21. ApplySarthi collects openings and links to application pages; the role is advertised by 100Ms, not by us.