AI Engineer

Posted 16 Days Ago
Be an Early Applicant
Bengaluru, Bengaluru Urban, Karnataka, IND
In-Office
Mid level
Artificial Intelligence • Fintech • Software • Financial Services
The Role
Build and maintain the agentic runtime and context management for multi-turn financial conversations; integrate and tune speech models (STT/TTS), optimize real-time voice pipelines for sub-1s latency, debug streaming/WebRTC issues, write prompts and orchestration for LLMs, and contribute to evaluation frameworks measuring conversation quality, compliance, and empathy.
Summary Generated by Built In

At Prodigal, we are building AI Agents for loan servicing and collections. Founded in 2018 by IITB alumni, our journey began when our founders Shantanu and Sangram faced the antiquated the $13B+ lending/collections industry was mostly using pen and paper and decided to build the first real intelligence layer for debt recovery.

Today, we stand at the forefront of a seismic shift in the industry, building Agentic AI applications for loan servicing and collections. Powered by our cutting-edge platform, Prodigal’s Intelligence Engine (PIE), we’re creating the next-generation agentic workforce - one that empowers companies to achieve unprecedented levels of operational excellence and intelligence.

With over 100+ enterprise customers across North America and backing from Y Combinator, Accel and Menlo Ventures, we are the fastest growing AI company in consumer finance.

About the Role

We're looking for an AI Engineer to join the proAgent team and work on the systems that power our autonomous voice agents in live financial conversations. You'll work alongside a small, high-agency team where you will have real ownership over features and components from day one.

This is a hands-on engineering role. You'll be deep in the code - building agent logic, integrating speech models, tuning prompts, and debugging gnarly real-time issues. You don't need to have done all of this before, but you need to be the kind of engineer who figures things out fast, takes feedback well, and ships.

What You'll Do

Agent Loop & Reasoning

  • Build and maintain components of the agentic runtime that powers multi-turn financial conversations - covering payment negotiations, compliance guardrails, and objection handling
  • Implement context management logic that tracks consumer state, conversation history, and business rules across long, branching dialogues
  • Write and iterate on primitives that balance conversational fluidity with structured reasoning - the agent needs to feel human while making verifiable decisions

Voice AI Systems

  • Work on our real-time voice pipeline with a target of sub-1s latency across transcription, reasoning, and synthesis
  • Contribute to VAD tuning and turn-taking logic that makes conversations feel natural
  • Help evaluate and integrate speech models (STT, TTS, speech-to-speech) - we currently work with ElevenLabs and Cartesia for TTS, and Deepgram for STT, and are always exploring what's next
  • Debug streaming audio and WebRTC issues in production

LLM Infrastructure

  • Write and refine prompts, implement orchestration flows, and contribute to model routing logic
  • Build components of our evaluation framework - helping measure agent quality across conversation quality, empathy, and compliance adherence
  • Stay curious about new models and tools - flag opportunities and contribute to build-vs-integrate discussions
What You Bring
  • 2 – 5 years of hands-on engineering experience, with good exposure to building or working with ML or AI systems in production.
  • Solid Python fundamentals - you are comfortable writing clean, maintainable code and debugging production issues.
  • Some experience working with LLMs: prompt engineering, API integrations, or building simple pipelines or agents.
  • High bias for action - you don't wait to be told exactly what to do, and you push yourself to ship rather than over-engineer.
  • Strong fundamentals in Python; familiarity with TypeScript is a plus.
  • Eager to learn in a fast-moving environment, take ownership of your work, and ask good questions.
Even Better
  • Exposure to voice AI: speech recognition, synthesis, or telephony systems - even if only through personal projects or coursework
  • Any background or interest in fintech, lending, or collections
  • You've tinkered with Twilio, LiveKit, ElevenLabs, or similar real-time infrastructure
  • You've built a small agentic system - even a side project - that combines LLM reasoning with structured actions
  • Familiarity with streaming protocols, WebRTC, or low-latency system design
Why This Role
  • Real ownership from day one:  proAgent is a small pod. You won't be a cog - you'll own components, ship features, and see your work in live consumer conversations within weeks.
  • Frontier work: voice AI that reasons, decides, and acts is one of the hardest problems in applied AI. You'll be learning by doing on problems most engineers never touch.
  • Strong mentorship: you'll work directly with senior engineers and the AI Lead who will invest in your growth - this is a place to level up fast.
  • High leverage early career: the decisions you make and the code you write will impact millions of financial conversations. Rare for an early-career role.

From day 1, Prodigal has been defined by talented, humble, and hungry leaders and we want this mindset and culture to continue to blossom from top to bottom in the company. If you have an entrepreneurial spirit and want to work in a fast-paced, intellectually-stimulating environment where you will be pushed to grow, then please reach out because we are looking to build a transformational company that reinvents one of the biggest industries in the US.

To learn more about us - please visit the following:

Our Story - https://www.prodigaltech.com/our-story

What shapes our thinking - https://link.prodigaltech.com/our-thesis

Our website - https://www.prodigaltech.com/ 

Skills Required

  • 2-5 years hands-on engineering experience with exposure to building or working with ML/AI systems in production
  • Solid Python fundamentals; comfortable writing clean, maintainable code and debugging production issues
  • Some experience working with LLMs: prompt engineering, API integrations, or building simple pipelines/agents
  • High bias for action, ownership mentality, ability to learn quickly in a fast-moving environment
  • Familiarity with TypeScript
  • Exposure to voice AI: speech recognition, synthesis, or telephony systems
  • Experience with Twilio, LiveKit, ElevenLabs, Deepgram, Cartesia or similar real-time infrastructure
  • Familiarity with streaming protocols, WebRTC, low-latency system design and debugging streaming audio
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The Company
HQ: Mountain View, CA
58 Employees
Year Founded: 2018

What We Do

Prodigal is a pioneer of Collection & Servicing Intelligence, a new category of AI software, which enables banks, lenders and collection agencies of all sizes to quickly and efficiently collect accounts receivables. Our cloud-native, Collection & Servicing Intelligence platform delivers actionable insights for banks, lenders, and ARM agencies to maximize revenue, optimize operations, and minimize compliance risk. Prodigal delivers artificial intelligence and machine learning capabilities to lenders and ARM agencies. Prodigal restores value from accounts past due and improves servicing productivity while retaining customer loyalty. We empower entire teams from executive leadership to representatives with data and insights needed to segment and prioritize accounts, to enhance portfolio yield, and to address procedural and legal (TCPA, FDCPA, UDAAP, ...) non-compliance. With our Collection & Servicing Intelligence Platform, senior executives have complete intelligence about expected liquidation, aggregated agent productivity, and FDCPA/TCPA non-compliance in real-time — an imperative for a modern collections business in an increasingly regulated environment. Prodigal is headquartered in the heart of Silicon Valley (Sunnyvale, CA) and is founded by industry veterans with deep expertise in financial services, predictive modeling, speech AI and core engineering. Our investors include top tier investors like Menlo Ventures, Accel andY Combinator. Prodigal has been featured in TechCrunch, American Banker, CBS News, Fortune, insideARM and other leading technology and financial services news sites.

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