Engineering Lead ( AI/ML, Gen AI)

Posted Yesterday
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Hyderabad, Telangana, IND
In-Office
Senior level
Artificial Intelligence • Information Technology • Software • Consulting
The Role
Lead the design, deployment, governance, and monitoring of AI and machine learning systems, including LLM agents, predictive models, computer vision, and document extraction. Establish engineering standards for prompts, evaluation, observability, cost management, model risk, and production metrics. Mentor engineers, set technical direction, assess emerging techniques, and communicate AI capabilities and trade-offs to business stakeholders.
Summary Generated by Built In

         Design and build AI solutions across a range of business problems, choosing the right approach for each: document and image extraction or classification, predictive models, workflow automation, LLM-based agents and more.

         Apply AI engineering best practices across every project: prompt design, retrieval strategies, evaluation frameworks, regression testing and version control for models and prompts.

         Set and enforce model governance standards: approval workflows, risk and bias assessment, and documentation for every model promoted to production.

         Build observability into every AI system: logging, tracing and monitoring for inputs, outputs, latency and failure modes, so issues surface before they reach the business.

         Own token economics and compute cost across LLM-based and other AI systems: track cost per request, choose the right model size for each task, and balance accuracy against spend.

         Build and maintain a dashboard that tracks the metrics that matter, such as accuracy, latency, cost, throughput, drift and error rate, across every AI system in production.

         Evaluate and select the right AI approach for each problem, whether that is an LLM, a classical machine learning model, computer vision or a mix, based on what the problem actually needs rather than what is fashionable.

         Mentor engineers on AI engineering practices, and build a shared standard for how the team designs, tests and ships AI systems.

         Explain what an AI system can and cannot do, in plain terms, to non-technical stakeholders and leadership, so expectations stay realistic.

         Track new AI and machine learning techniques, and test them against real business needs rather than adopting them for their own sake.

 

What You Bring

         8+ years of software engineering experience, including 3+ years focused on applied AI or machine learning in production.

         Hands-on experience building and deploying a range of AI solutions, such as document or image extraction and classification, predictive models, recommendation systems, or LLM-based agents and assistants.

         Strong programming skills in Python or a comparable language, and fluency with standard AI and ML tooling: model frameworks, orchestration frameworks and vector databases.

         Experience building observability into AI systems: logging, tracing, monitoring and alerting for model behavior in production.

         Experience with model governance: approval workflows, risk and bias assessment, and documentation standards for models moving into production.

         Working knowledge of token economics and compute cost management for AI systems at scale.

         Experience building dashboards or metrics systems that track model and system performance over time.

         A track record of leading or mentoring engineers and setting technical direction, not only contributing as an individual.

         Strong business acumen: you translate an AI capability into a concrete business outcome, and you know when a simpler, non-AI solution is the right call.

         Clear communication skills. You explain technical trade-offs to engineers and non-technical stakeholders alike, without losing precision.

Nice to Have

         Experience with document or image classification and extraction, as one of several AI domains you have worked in.

         Experience with a dashboarding tool such as Power BI, Tableau or Grafana, used for tracking model and system metrics.

         Familiarity with prompt versioning or evaluation frameworks used for regression testing model outputs.

         Exposure to a data-intensive industry, such as real estate, financial services or health care.

 



Skills Required

  • 8+ years of software engineering experience
  • 3+ years focused on applied AI or machine learning in production
  • Hands-on experience building and deploying AI solutions, including document or image extraction, predictive models, recommendation systems, or LLM-based agents
  • Strong programming skills in Python or a comparable language
  • Fluency with model frameworks, orchestration frameworks, and vector databases
  • Experience building observability into AI systems, including logging, tracing, monitoring, and alerting
  • Experience with model governance, approval workflows, risk and bias assessment, and documentation standards
  • Working knowledge of token economics and compute cost management for AI systems at scale
  • Experience building dashboards or metrics systems for model and system performance
  • Experience leading or mentoring engineers and setting technical direction
  • Strong business acumen and ability to translate AI capabilities into business outcomes
  • Clear communication skills for explaining technical trade-offs to technical and non-technical stakeholders
  • Experience with document or image classification and extraction
  • Experience with Power BI, Tableau, or Grafana
  • Familiarity with prompt versioning or model-output evaluation frameworks
  • Exposure to a data-intensive industry such as real estate, financial services, or health care
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The Company
HQ: Hyderabad
Year Founded: 2021

What We Do

AlgoLeap specializes in AI-powered software solutions, digital product engineering, and IT consulting services, focusing on digital transformation and AI-driven innovation.

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