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Machine Learning Engineer
A US-headquartered product company scaling its India hub
Location: Bengaluru, Mumbai, Delhi NCR, Hyderabad, Pune, Chennai, Kolkata, Ahmedabad — or Remote (India)
About the Company
A US-headquartered product company with a large, established customer base is scaling its India engineering hub and has partnered with Flexiple to hire a Machine Learning Engineer for its core platform team. The team owns ML features that already run in production at scale and need an engineer who can extend and harden them. Flexiple is a managed marketplace that helps global companies build high-performing teams and GCCs in India.
Role Overview
As a Machine Learning Engineer, you will build, evaluate, and ship models into the company's production product, working closely with backend and platform engineers to keep inference reliable at scale.
Key Responsibilities
Model Development
Production & Platform
Ideal Candidate Profile
Preferred Qualifications
What We Offer
Hiring Process
HR Screening → Technical Assessment → System Design Round → Culture Fit
Job ID: 152366235
Skills:
S3, Machine Learning, Pytorch, Docker, Sqlite, XGBoost, Postgres, Python, AWS, Matplotlib, Sql, Jenkins, Pandas, Information Retrieval, HuggingFace, LabelBox, OpenSearch, ML pipelines, MosaicML, LightGBM, Scikit-learn, Amazon EKS, DVC, NVIDIA NeMo, Transformers, Jupyter
Skills:
Machine Learning, Tensorflow, Git, Nlp, Pytorch, Docker, Rest Apis, Python, Ocr, Computer Vision, DocTR, Vision-Language Models, Grounding DINO, CLIP, NLLB, IndicTrans2, TrOCR, PaddleOCR, IndicWhisper, OWL-ViT
Skills:
Spark, Databricks, Python, Auc, Roc, Delta Lake, MLflow, feature engineering, CI CD
Skills:
S3, Sns, k-means, Python, Api Gateway, Dynamodb, Kms, Iam, Sqs, FastAPI, Secrets Manager, AWS CDK, FHIR R4, scikit-learn, Pydantic v2, LOINC, Aurora PostgreSQL, snomed, EventBridge, OpenSearch Serverless, HDBSCAN, k-NN algorithms, Step Functions, RxNorm, HL7 v2, ECS Fargate, USCDI
Skills:
Tensorflow, Gcp, Pytorch, Azure, Python, AWS, Generative AI, Prompt engineering, Model monitoring, LLMs, scikit-learn, Drift detection, versioning, ML ecosystems, Experiment tracking, Fine-tuning adaptation techniques