Data Engineer - ML & AI in Bengaluru, India - Jobeax
Vacancy description
Data Engineer - ML & AI in Bengaluru, India
IMerit Technology
India, Bengaluru
Data Engineer - ML & AI in Bengaluru, India is listed on Jobeax. Browse 30,000+ vacancies available.
iMerit is a leading AI data solutions company specializing in transforming unstructured data into structured intelligence for advanced machine learning and analytics applications. Our clients span autonomous mobility, medical AI, agriculture, and more—powering next-generation AI systems with high-quality data services. We are seeking a skilled Data Engineer to help scale and enhance our internal data observability and analytics platform. This platform integrates with data annotation tools and ML pipelines to provide visibility, insights, and automation across large-scale data operations. You will design and optimize robust data pipelines, build integrations with internal platforms (e.g., Design and build scalable batch and real-time data pipelines across structured and unstructured sources. Integrate analytics and observability services with upstream annotation tools and downstream ML validation systems to enable full-cycle traceability. Collaborate with product, platform, and analytics teams to define event models, metrics, and data contracts. Develop ETL/ELT workflows using tools like AWS Glue, PySpark, or Airflow; ensure data quality, lineage, and reconciliation. annotation throughput, quality KPIs, latency). Build data models and queries to power dashboards and insights via tools like Athena, QuickSight, or Redash. Contribute to infrastructure-as-code and CI/CD practices for deployment across cloud environments (preferably AWS). Document architecture, data flow, and support runbooks; continuously improve platform performance and resilience. Integrate with customer data platforms and pipelines, including bespoke data frameworks.
4–8 years of experience in data engineering or backend development in data-intensive environments. Proficient in Python and SQL; Strong experience with cloud-native data tools and services (S3, Lambda, Glue, Kinesis, Firehose, RDS). Experience with data lake and warehouse patterns (e.g., Delta Lake, Redshift, Snowflake). Solid understanding of data modeling, schema design, and versioned datasets. Data Governance and Security: Understanding and implementing data governanc policies and security measures. Proven experience in building resilient, production-grade pipelines and troubleshooting live systems. Good working knowledge of Database fundamentals, relational databases and SQL
Experience with observability/monitoring systems (e.g., Familiarity with data governance, RBAC, PII redaction, or compliance in analytics platforms. Exposure to annotation/ML workflow tools or ML model validation platforms. Comfort working in Agile, distributed teams using tools like Git, JIRA, and Slack.
You'll work at the intersection of AI, data infrastructure, and impact—contributing to platforms that ensure AI is explainable, auditable, and ethical at scale. Join a team building the next generation of intelligent data operations.
... query optimization and data access strategies for APIs serving real-time compliance dashboards, establishing benchmarks and SLOs Lead data infrastructure work for AI/ML features, including dataset curation, feature engineering, and pipeline design supporting cloud-native AI capabilities Define and enforce data quality standards, ...
... Pipeline, ETL/ELT, and Data Warehousing. - Effective use of AI and/or LLMs to increase efficiency in deliverables. - Extensive experience working with various data sources (DB2, SQL,Oracle, flat files (csv, delimited), APIs, XML, JSON). - Experience implementing data integration techniques such as event/message based integration ...
... comfortable using LLMs/AI copilots as part of daily workflow (analysis, documentation, communication, process design), not just as a novelty. - Experience working with AI/ML teams and understanding of how annotated data feeds into model training. - Strong understanding of quality frameworks (QA/QC) for spatial data and annotation ...
... retrieval-augmented generation (RAG) systems Develop and optimize prompts, evaluation frameworks, and guardrails for LLM-powered applications Engineer scalable data and ML pipelines in Databricks using PySpark, Delta Lake, and MLflow Deploy, monitor, and maintain models in production on Azure (Azure AI Foundry, Azure OpenAI, Azure ...
... deploy real-time decisioning rules and ML systems to detect synthetic fraud, digital identity theft, account takeovers, and transactional fraud. - Feature Engineering: Mine complex, large-scale, and alternative data streams (bank transactional data, logs, credit bureau reports, structured/unstructured digital signals) ...
... scalable solutions Generate actionable insights through data analysis and modeling Deploy, monitor, and improve model performance Qualifications - Bachelor's/Master's in Computer Science, Data Science, Engineering, or related field - 3–8 years of relevant experience Skills: data scientist,genai,python,sql,pyspark,aiml,ml
... candidate will leverage generative AI and large language models (LLM) to enhance our data-driven decision-making processes. Key responsibilities : Design and develop data models using generative AI and LLM technologies. Implement retrieval-augmented generation techniques to improve data accessibility. Analyze complex datasets to ...
... End‑to‑End ML Project Lifecycle Python/R Programming Skills Software Engineering & Agile Framework Preferred Experience Prior experience with oil & gas, commercial domain, supply chain, production systems, wells or subsurface domain is highly desirable. Experience working with Azure Databricks or other data science frameworks. ...
... scalable AI/ML solutions and take models from experimentation through production. Requirements KEY RESPONSIBILITIES - Design, develop, test, and deploy scalable AI/ML models and solutions . - Work with large and complex datasets to perform data preparation, transformation, feature engineering, and analysis. - Develop and ...
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As an AIML Engineer, you will be responsible for designing, developing, and deploying AI-powered applications and agentic AI solutions leveraging Python, LangChain, LangGraph, LLMs, RAG, Oracle Database 23c/26ai, and Oracle APEX. You will work closely with cross-functional teams to build scalable AI solutions that integrate ...
As an AIML Engineer, you will be responsible for designing, developing, and deploying AI-powered applications and agentic AI solutions leveraging Python, LangChain, LangGraph, LLMs, RAG, Oracle Database 23c/26ai, and Oracle APEX. You will work closely with cross-functional teams to build scalable AI solutions that integrate ...
Project Role : Data Engineer Project Role Description : Design, develop and maintain data solutions for data generation, collection, and processing. Create data pipelines, ensure data quality, and implement ETL (extract, transform and load) processes to migrate and deploy data across systems. https://jobeax.com/link/6WcBICn0LM558SP0 ...
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... expertise in NLP, Fundamental machine learning, deep learning, transformer, state space-based architecture.- Azure ML and/or AWS.- Strong in Python coding, SQL and database queries, data preparation, and analysis.- Exploratory Data Analysis (EDA).- Experience with PyTorch.- LLM training and fine-tuning (e.g., GPT, LLaMA, Mistral, ...
... Extensive experience in building, consuming, and optimizing RESTful APIs, with proficiency in tools like Swagger, Postman, or similar. - Strong knowledge of SQL databases and querying languages - Demonstrated experience in building and maintaining robust CI/CD pipelines using tools such as Jenkins or GitLab CI. - Exceptional ...
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Job Title: Senior Data Engineer Eperience - 10+ to 18 yrs Location: Remote Type: Contract( Comfortable with a 6-month contractual role) Requires strong hands-E xperience in AI and Data Engineering with strong expertise in Azure OpenAI, Azure AI Foundry, Agentic AI, RAG, LLMs, AutoGen, OCR, Databricks, PySpark, Python, Azure ...