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AI Software Engineer

Practice By Numbers
Location
Gurugram, Haryana, India
Workplace
Onsite
Employment
Full Time
Salary
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Posted 1mo ago

AI Software Engineer

Practice by Numbers (PBN) | Gurugram, India S

cope

AI / Conversational Products & Backend Services

About Practice by Numbers

Practice by Numbers is a dental practice management SaaS platform serving over 1,500 practices across North America — practice management software, VOIP, payment processing, and analytics. We are now expanding into AI-powered automation, building conversational AI products that change how practices interact with their patients.

About the Role

We’re looking for a Software Engineer with strong, hands-on experience in both backend product engineering and modern AI systems. The ideal candidate can design and build reliable, production-grade services while also developing, integrating, and deploying AI-powered capabilities. As this is a single opening on a small team, we need someone who can take end-to-end ownership across both areas and contribute independently throughout the product development lifecycle.

You'll work on our AI Receptionist — a multi-channel conversational AI (voice, SMS, web chat) for dental practices — and the backend services, APIs, and integrations behind it.

Hands-on IC role

you own features end to end, including their production behaviour. Real patient-facing traffic under HIPAA constraints, where correctness and latency both matter.

Reports to

Lead Engineer — AI

Location

Gurugram, India — this role is open in Gurugram only

Work Mode

In-office

Working Hours

Primarily IST (10 AM – 5 PM), with some evening overlap with US teams (until 9–11 PM IST) as needed

What You'll Do

Backend

  • Build and maintain backend services and RESTful APIs in Python (FastAPI / Django)
  • Design schemas and write efficient PostgreSQL queries; use Redis for caching and session state
  • Work with async and event-driven patterns — queues, webhooks, WebSockets, background workers

Own the operational side

logging, metrics, alerting, debugging production issues

  • Write unit and integration tests for the business logic you ship

AI & LLM

Build and iterate on LLM-driven conversation flows

tool calling, multi-turn state, context handling

  • Write and refine prompts for specific use cases, and measure the impact of changes
  • Build guardrails for patient-facing interactions — no medical advice, no unverified data disclosure
  • Work with RAG and knowledge-base retrieval for practice-specific questions
  • Contribute to evaluation and regression testing so AI quality doesn't drift between releases
  • Balance response quality, latency, and cost across LLM and voice vendors

Integrations & Data

  • Integrate with practice management systems (Dentrix, Open Dental, Eaglesoft) and internal PBN APIs
  • Implement secure auth flows, including OTP-based patient verification
  • Follow HIPAA-compliant practices across data handling, logging, and storage Collaboration
  • Work with Product Management to turn requirements into working software, surfacing edge cases early
  • Participate in sprint planning, standups, code reviews, and product reviews
  • Document what you build; collaborate across time zones with US-based stakeholders

Required Qualifications

Experience

  • 2–6 years of professional software development experience
  • Hands-on experience building backend services and APIs that ran in production
  • Practical experience with LLM-based applications (GPT-4/4o, Claude, or similar) — prompt design, tool calling, handling model output in real systems. Substantial personal or open-source work counts; tutorial-level does not.
  • Experience debugging and improving a system after it shipped

Technical Skills

  • Strong Python — our primary language across AI and backend

APIs

RESTful services, webhooks, third-party integrations; FastAPI or Django preferred

Databases

PostgreSQL — schema design, indexing, query performance; Redis or similar

  • Async Python (asyncio) and event-driven architectures

Cloud

working knowledge of AWS (or GCP/Azure) — compute, storage, managed DBs, queues

  • Version control, code review, and CI/CD as normal parts of your workflow

AI Domain Understanding

  • Clear view of what LLMs can and cannot do reliably, and how that shapes product design
  • Prompt engineering and conversation design for multi-turn interactions
  • Familiarity with RAG and agentic patterns — tool use, orchestration
  • Some experience evaluating and monitoring LLM systems
  • Awareness of token cost and latency trade-offs

Soft Skills

  • Comfort with ambiguity — you can make a reasonable call and explain it
  • Clear communication with technical and non-technical stakeholders
  • Able to drive your own work to completion without close supervision
  • Comfortable with a fast pace and evolving requirements
  • Willing to work in-office in Gurugram and overlap with US hours when needed

Preferred Experience & Skills

  • Conversational AI — chatbots, voice assistants, or IVR
  • Voice/telephony (Twilio, Vonage) or STT/TTS APIs (Deepgram, ElevenLabs, AssemblyAI)
  • LLM orchestration frameworks (LangChain, LlamaIndex) — or a considered view on skipping them
  • Healthcare / HIPAA compliance knowledge
  • Observability tools (Datadog, New Relic, Sentry, Papertrail)
  • Celery or similar task queues; AWS SQS or equivalent
  • SaaS or B2B product company background; multi-tenant architecture
  • Open-source contributions

Skills

  • HIPAA
  • Python
  • FastAPI
  • Django
  • PostgreSQL
  • Redis
  • Webhooks
  • WebSockets
  • LLM
  • Retrieval-Augmented Generation
  • GPT-4
  • Anthropic Claude
  • AWS
  • GCP
  • Azure
  • Prompt Engineering
  • Twilio
  • LangChain
  • LlamaIndex
  • Datadog
  • New Relic
  • Sentry
  • Celery
  • AWS SQS

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