AI Engineer, Agent Analytics & Optimization (DPI)

Conviva Inc.
United States
1 day ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Experienced
Experience required
3 years minimum
Compensation
$180,000.0 - $250,000.0
Working hours
Regular working hours
Job source

Tech stack

Application Programming Interfaces (APIs) Artificial Intelligence Amazon Web Services Software Debugging Python (Programming Language) Operational Data Store Open Source Technology Software Engineering Large Language Models Multi-Agent Systems Prompt Engineering Backend
+3 more
Build Management Data Analytics Video Streaming

Job description

JobPosting MonetaryAmount USD QuantitativeValue 250000 180000 YEAR 2026-07-07T14:37:52Z

Conviva is the first and best place to understand and optimize digital customer experiences. Our Operational Data Platform harnesses full-census, comprehensive client-side telemetry-capturing every aspect of customer experience and engagement across all devices and linking them to the performance of underlying services, in real-time and at a fraction of the cost of alternative solutions. Conviva computes quality of experience across all users and all devices, in real time. We combine user actions with app and system responses to give your technology, business, and operations teams AI-powered insights into any issues impacting user experience and engagement. Trusted by industry leaders like Disney, NBC, and the NFL, Conviva revolutionizes how businesses understand customer experience and engagement, maximizing satisfaction, conversion, and revenue.

Conviva is the intelligence layer for digital businesses, turning every consumer interaction into outcome-based intelligence-linking engagement patterns across AI agents, apps, websites, and streaming video to real results such as purchases, bookings, and resolved support requests. Powered by its patented Time-State Technology®, the Conviva® Operational Data Platform delivers real-time insights and automation that help leading enterprises grow, improve satisfaction, and build lasting trust.

The Opportunity

AI agents are becoming a new digital surface alongside mobile and web. This role builds the systems that let AI agents understand, query, and act on Conviva’s behavioral data - MCP servers, agentic workflows, and the AI connectors that tie the platform into any client or downstream system.

This is a builder role end-to-end: design and ship agentic systems from tool interface through deployment, observability, and iteration - working closely with product and customers. This is not a research role, and it is not prompt engineering; the team builds production systems that use AI to solve real problems at scale.

How This Role Fits

This is an engineering role, distinct from Conviva’s Product Builder roles on the same team:

  • Product Builders validate direction through customer discovery and prototypes - deciding what agent analytics should become.
  • This role turns that direction into production-grade systems that run reliably at scale - owning the build and the runtime, not the roadmap.

What Success Will Look Like:

Build & Ship

  • Design and build MCP servers that expose Conviva’s data and analytics as discoverable, reliable tools for AI agents, with proper auth, scoping, and access controls
  • Architect and ship agentic workflows: multi-step reasoning, tool use, orchestration patterns, and human-in-the-loop where needed
  • Develop AI connectors integrating Conviva’s intelligence with external agents, clients, and downstream systems
  • Own the full lifecycle - API/tool design, deployment, monitoring, production hardening

Reliability & Iteration

  • Use evals to validate agent behavior before shipping, catch regressions, and debug production divergence
  • Build observability and tracing to make agent behavior inspectable and auditable
  • Tune for latency, cost, and reliability as models and data drift

Execution & Collaboration

  • Partner with Product Builders, design, and customers to ship working software (not prototypes)
  • Build internal SDKs, reusable patterns, and shared context that raise the floor for the whole team
  • Stay close to the fast-moving MCP/agent ecosystem and bring back what’s relevant

Requirements

  • 3-7+ years of software engineering experience, with production systems shipped end-to-end
  • Strong Python backend fundamentals; comfortable owning services from design through deployment (fullstack a plus)
  • Hands-on experience building and operating LLM-powered agents in production - with concrete stories of what broke, how you fixed it, and what you’d do differently
  • Practical familiarity with agentic patterns: tool use, structured outputs, prompt chaining, multi-agent coordination, and knowing when a deterministic workflow is the right call
  • Experience designing/building MCP servers or equivalent tool-use / AI connector integrations
  • Have used evals to validate and debug agent behavior
  • Comfortable with cloud deployment (GCP/AWS), containerized services, and async Python
  • Strong product instinct - thinks about what users actually need and pushes back when a spec doesn’t add up

Bonus Points

  • Experience with agentic frameworks (LangGraph, Anthropic SDK, Pydantic-AI, CrewAI, or similar)
  • Agent observability/tracing (Langfuse, LangSmith, OpenTelemetry, or homegrown)
  • Background in digital experience analytics, observability, or APM
  • Familiarity with agent evaluation or LLM-ops tooling
  • Published writing, talks, or open-source work at the intersection of engineering and AI

Benefits & conditions

  • A front-row seat to a category being created in real time - agent analytics is where web analytics was in 2005
  • A team that values builders - we use AI every day to move faster, not just talk about it
  • A hybrid role shaping both the “what” and the “how” - strategy meets craft
  • Competitive compensation, equity, and benefits

The expected salary range for this full-time position is $180,000-$250,000 + equity + benefits. Actual level and compensation are determined by qualifications, professional background, and relevant experience.

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Good distractions

Talks and stories from around this role — technically off-topic, practically not.

1:24 min

Building client-facing AI agents for engineering teams

Alfonso Graziano Alfonso Graziano · Coffee With Developers

1:52 min

Structuring and scaling the backend engineering team

Stefan Lingler Stefan Lingler +1 · Coffee With Developers

1:32 min

Structuring platforms for new services and data analytics

Nevelina Aleksandrova · LIVE

2:40 min

Overview of video streaming fundamentals and session agenda

Phil Cluff · LIVE

3:45 min

Fusing developer experience and platform engineering for agentic SDLC

Julia Kordick Julia Kordick · World Congress 2026 Europe

1:12 min

Choosing TypeScript for complex backend applications

Maximilian Otto Maximilian Otto · World Congress 2024

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