Full-Time

Lead Machine Learning Engineer

Updated on 7/27/2026

Egen

Egen

1,001-5,000 employees

Cloud-based AI platform development and consulting

No salary listed

Hyderabad, Telangana, India

Hybrid

Hybrid work model; some on-site in Hyderabad, India.

Category
AI & Machine Learning (1)
Required Skills
LLM
MLOps
Pinecone
Airflow
TensorFlow
Elasticsearch
Google Cloud Platform

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Requirements
  • Ten+ years of professional experience in Machine Learning and AI engineering.
  • Google Cloud Professional Machine Learning Engineer Certification or TensorFlow Developer Certification.
  • Hands-on experience with MLOps, CI/CD pipelines, and orchestration tools (Kubeflow, Airflow, Dagster).
  • Familiarity with model serving and monitoring frameworks (Vertex AI, Azure ML).
  • Demonstrated track record of mentoring engineers and leading cross-functional AI/ML projects.
  • Educational qualifications: Minimum: B.Tech. / B.E. in Computer Science, Information Technology, or a related field; Preferred: Master’s degree (M.S. / M.Tech.) in Machine Learning, Data Science, or Artificial Intelligence.
  • Proven experience with load testing using Locust or k6 and diagnosing distributed system bottlenecks.
  • Deep hands-on experience with vector databases (Pinecone, Milvus, Qdrant) and search engines (Elasticsearch, OpenSearch).
  • Experience implementing reranking models (BGE, Cohere) and fusion techniques (Reciprocal Rank Fusion).
  • Experience integrating enterprise Master Data Management feeds and managing NoSQL stores, specifically Google Cloud Firestore.
  • Strong background applying ML techniques to search relevance, ranking, and personalization.
  • Hands-on experience with large language models or generative AI for search retrieval and knowledge synthesis.
Responsibilities
  • Design, build, and tune a hybrid search engine combining Vector Search (semantic) and Lexical Search (BM25/keyword) to deliver best-in-class relevance.
  • Implement advanced ranking and blending strategies including BGE rerankers and Reciprocal Rank Fusion (RRF).
  • Own end-to-end search accuracy and relevance metrics (NDCG, MRR, Recall) and drive measurable, data-backed improvements over time.
  • Build and maintain an automated accuracy evaluation harness for continuous, regression-proof pipeline testing.
  • Establish quality benchmarks and champion a metrics-first engineering culture across the team.
  • Conduct systematic load testing (Locust, k6) and stress-test retrieval pipelines to surface and eliminate bottlenecks.
  • Architect and optimize systems to guarantee a strict SLA of P95 latency < 500ms under peak production load.
  • Partner with DevOps/MLOps to design scalable, resilient deployment patterns for search and ranking models.
  • Manage ingestion pipelines for Master Data Management (MDM) feed integration, ensuring clean and timely data synchronisation.
  • Govern schema and operational configurations within the Firestore spec_registry.
  • Collaborate with data governance teams to uphold data quality standards across all search indexes.
  • Mentor junior and mid-level engineers through code reviews, pairing, and technical guidance.
  • Lead cross-functional AI/ML project teams, translating business requirements into clear technical roadmaps.
  • Communicate complex architectural decisions clearly to both technical peers and non-technical stakeholders.
Desired Qualifications
  • Experience in Computer Vision or Recommender Systems.
  • Familiarity with knowledge graph construction or entity resolution pipelines.
  • Prior exposure to e-commerce or supply chain search use cases.

Egen.ai builds data-driven solutions by combining cloud computing, AI, and platform development to help organizations optimize operations, reduce costs, and improve decision-making. It delivers tailored consulting and scalable platforms, partnering with cloud and data platform providers across industries, including government and enterprise clients. Its solutions collect and analyze data from clients’ systems, deploy AI-powered features, and run on cloud infrastructure to support predictive maintenance, mobile ordering, and other use cases. The goal is to accelerate clients' data and platform value chains, delivering measurable cost savings and operational improvements.

Company Size

1,001-5,000

Company Stage

Pre-seed

Total Funding

$1.3M

Headquarters

Naperville, Illinois

Founded

2000

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Simplify Jobs

Simplify's Take

What believers are saying

  • Egen captures enterprise AI spending as corporations accelerate capital allocations toward generative and agentic artificial intelligence.
  • Active hiring for Agentic Change Enablement consultants signals rapid market expansion and service demand growth.
  • Workflow orchestration and performance measurement at scale deliver measurable financial outcomes from experimental AI ideas.

What critics are saying

  • Single-vendor lock-in to Google Cloud exposes Egen to margin collapse if API costs rise or partner benefits shrink.
  • A 2024 San Francisco competitor offers a $1.2M agentic platform at 30% lower pricing, targeting Egen's mid-market clients.
  • The EU AI Act's 2026 high-risk classification mandates conformity assessments; failure triggers €15M fines and client blacklisting.

What makes Egen unique

  • Egen uniquely bridges AI pilots to scaled adoption by aligning people, workflows, governance, and technology.
  • The firm integrates natively with Google Cloud's Gemini Enterprise toolsets for secure, compliant automated agents.
  • Digital transformation veteran Christy Mayr leads the Agentic Change Enablement Practice to accelerate enterprise adoption velocity.

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Benefits

Fun team outings

Health insurance

401(K)

Dental & vision insurance

Paid time-off

Food & drinks

Parental leave

Company News

PR Newswire
Oct 24th, 2024
Egen Announces Acquisition of Qarik, Strengthens Position as Leading Cloud, Platform and AI Services Provider in the Google Cloud Ecosystem

/PRNewswire/ -- Egen, a technology services company with leading capabilities across Google Cloud infrastructure, product and data engineering, and artificial...