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Staff Backend / Product Engineer - FinOps & AI Cost Intelligence Platform

Role overview

Qualifications

  • 8+ years of professional software engineering experience
  • Deep backend expertise in Python (Java or C++ as secondary languages)
  • Experience building and operating data-intensive backend systems or pipelines in production
  • Hands-on experience building on AWS

Responsibilities

  • Design and build backend-heavy platform features for our platform
  • Productionalise AI-enabled capabilities (e.g. anomaly detection, recommendations)
  • Implement AI thoughtfully across the entire SDLC
  • Collaborate closely with Product to turn vision into shipped features

Key facts

  • Remote from: United States
  • Full time
  • Senior (5-10 years)
  • Backend Engineer
  • English

Hard skills

Other skills

  • Communication
  • Collaboration
  • Problem Solving

About the company

Gigster logo

Gigster

Software Development

Gigster builds top-tier software development teams. Our AI-powered platform ensures tailor-fit talent matching, accelerated delivery, cost efficiency, and guaranteed project outcomes. Perfect-Fit Talent Matching: Receive tailor-fit talent matching with Gigster’s AI-powered platform based on skillset, past performance, and personality type collected from 10+ years of project data. Guaranteed Outcome: Guaranteed pricing and outcomes for any fully-managed project based on 5,000+ deliverables. Flexibility: Get a fully-managed team with a project manager to orchestrate end-to-end project execution for big projects or elicit on-demand talent to add to your existing team. Elite Talent: Get access to our global talent pool of 50,000+ rigorously-vetted developers, designers, and project managers. Fast Start & Confident Delivery: Proven delivery workflow model for accelerated start and streamlined development for maximum efficiency in execution and project delivery. Founded in 2014, Gigster has completed over 5,000 projects with some of the largest companies in the world. Third party research firm, Constellation Research, completed a study that showed Gigster’s model results in 30% more efficiency in staffing, 60% lower delivery risk, and a 3.6x higher customer satisfaction score than other software development firms.

Company details

Company typeStartup
IndustrySoftware Development
Company size11 - 50

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Job description

Staff Backend / Product Engineer - FinOps & AI Cost Intelligence Platform

(AI Platform)

Location: Remote
Type: Full-time
Team: Cost Optimisation (CO) – Product Engineering
Reports to: Director of Engineering

About Virtasant

Virtasant is a global technology services company that delivers outcomes through automation. Our services include software engineering, technology operations, cloud migration, application modernization, and cloud optimization.

We help some of the world’s largest organizations modernize their technology operations, optimize costs, and unlock new opportunities for innovation. Our fully remote, globally distributed team is passionate about delivering world-class technology solutions while embracing a culture of excellence, ownership, and impact.

The Role

We’re looking for a Staff-level, backend-first Product Engineer to help evolve our multi-cloud FinOps platform into a broader cloud and AI cost intelligence platform. The role will focus on distributed data systems, reliable processing of cloud billing and usage data, platform architecture, and extending AI cost visibility from aggregate spend toward application, workflow and request-level attribution.

You’ll operate with high autonomy, significant ownership, and direct access to product leadership. Think founding engineer energy, without the chaos.

You will help define how AI capabilities move from experimentation to durable product features, with an emphasis on reliability, cost efficiency, and clear user value - not just model novelty.

What You’ll Be Doing

  • Design and build backend-heavy platform features for our platform.

  • Productionalise AI-enabled capabilities (e.g. anomaly detection, recommendations, agent-based workflows).

  • Implement AI thoughtfully across the entire SDLC - prototyping, testing, iteration, and deployment.

  • Design and build distributed data pipelines that process cloud billing, usage, and AI telemetry.

  • Build reliable systems that handle backfills, late-arriving data, and historical reprocessing.

  • Design scalable data models and APIs that power customer-facing analytics and AI cost insights.

  • Collaborate closely with Product to turn vision into shipped features.

  • Identify blockers early, communicate clearly, and iterate fast.

  • Help shape engineering standards and patterns as the product matures.

  • You will help define how AI capabilities move from experimentation to durable product features, with an emphasis on reliability, cost efficiency, and clear user value - not just model novelty.

  • Build AI features with explicit evaluation criteria, feedback loops, and guardrails (accuracy, latency, cost, and explainability) so models improve predictably over time.

Success in the first 6–12 months looks like:

  • 2+ production-ready features shipped.

  • Tangible progress towards operating as a smart intelligence platform.

  • Clear, repeatable engineering patterns for AI-enabled development.

  • Utilize lightweight but rigorous AI engineering practices (evaluation harnesses, rollout strategies, and rollback mechanisms) that allow the platform to scale AI features safely and repeatedly.

What We’re Looking For (Non-Negotiables)

  • 8+ years of professional software engineering experience, with deep backend expertise in Python (Java or C++ as secondary languages).

  • Experience building and operating data-intensive backend systems or pipelines in production.

  • Strong understanding of data modelling, reliability, and data processing.

  • Ability to design scalable systems and take them from concept through production.

  • Experience with AI driven development to accelerate and drive product development.

  • Hands-on experience building on AWS.

  • Demonstrated experience using AI in real production systems (not just experimentation - clear, repeatable patterns).

  • Comfortable working in ambiguity with product-led direction.

  • Ability to architect backend services that support asynchronous workflows, event-driven pipelines, and AI agents that operate over time rather than single request/response cycles.

  • Comfort articulating why certain AI approaches were not used, including trade-offs around latency, explainability, data availability, or long-term maintainability.

What Matters More Than Checklists

We care deeply about how you think and build, not just what tools you’ve used.

We’re looking for engineers who can:

  • Tell a compelling story about a product journey, not just features shipped

  • Explain why decisions were made and what trade-offs were considered

  • Fail fast, learn quickly, and iterate relentlessly

  • Clearly articulate technical roadblocks and collaborate on solutions

  • Thrive in a fast-paced, high-ownership environment

Why This Role Stands Out

  • You’ll work on a real AI product, not internal tooling or demos.

  • Near-founding-engineer level autonomy and influence.

  • Direct impact on product direction and commercial outcomes.

  • Opportunity to help shape a platform with standalone, licensable AI capabilities.

  • A rare chance to build product inside a consultancy without being consumed by client work.

  • You’ll build AI capabilities informed by real enterprise-scale cost and usage data, enabling smarter models and workflows than greenfield or synthetic-data products.

Why Virtasant

  • High ownership, high trust environment.

  • Opportunity to own and shape technical delivery at scale.

  • Work closely with experienced engineering and delivery teams.

  • Exposure to broader cloud optimisation and consulting initiatives over time.

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MR

Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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