Full-Time

Senior ML & AI Technical Solutions Engineer

Posted on 4/28/2026

Databricks

Databricks

10,001+ employees

Data lakehouse platform for analytics

No salary listed

Bengaluru, Karnataka, India

In Person

Category
Sales & Solution Engineering (1)
Required Skills
LLM
MLOps
Microsoft Azure
Python
Neural Networks
Apache Spark
Machine Learning
Java
Data Engineering
RAG
AWS
Scala
LangGraph
LangChain
Databricks
Google Cloud Platform
Requirements
  • 8+ years of experience designing, building, and scaling Data, Machine Learning, and AI systems on-premises and in the cloud using Python, Scala, and Java in production environments, with expertise in Machine Learning and/or Generative AI.
  • Experience with cloud platforms (AWS, Azure, or GCP); familiarity with Databricks is a plus.
  • Proficient in data engineering necessary for orchestrating end to end machine learning training pipelines, ideally with experience processing large datasets with Apache Spark.
  • SME knowledge in feature engineering, ML frameworks, model training, model monitoring, drift detection, and retraining strategies. Proficient working with algorithms, and deep learning along with NLP techniques.
  • Prior experience building, designing or troubleshooting LLM-based Generative AI applications. Familiarity with agentic frameworks (e.g., LangChain, LangGraph etc). Expertise in context orchestration, including prompt design, memory management, retrieval systems, vector embeddings, semantic search, and tool integrations.
  • Comprehensive Knowledge of MLOps and LLMOps with expertise in model evaluation, scoring, ranking, optimization, training, validation, and packaging.
  • Experience developing agent skills, plugins, and debugging with native AI capabilities is a plus.
  • Prior support or customer facing experience is not a must for this role, but the ability and desire to develop excellent customer service skills is.
  • Prior experience as Data Scientist, ML Engineer, or AI Engineer roles is highly valued.
  • Bachelor’s or Master’s degree in Computer Science, Engineering, or related field (or equivalent experience). Professional certifications are good to have.
Responsibilities
  • Act as senior technical solution expert for complex issues spanning data pipelines, ML pipelines and/or AI applications, applying deep expertise in distributed systems.
  • Analyze and troubleshoot production workloads at the code level, optimize for performance, reliability, latency, and cost.
  • Diagnose and support Machine Learning and/or Large Language Model deployments, including real-time and batch inference, autoscaling, monitoring, logging, and alerting. Serve as a Subject Matter Expert guiding customers on experiment tracking, model registry, versioning, evaluation, labeling, tracing, and lifecycle observability.
  • Provide high-quality support by guiding customers in leveraging Databricks AI to solve Generative AI use cases & challenges, leveraging LLMs, MCP, AI Agents, RAG/Agentic RAG, APIs, vector embeddings, semantic search, vector search/lakebase databases, context orchestration, memory management, and prompt engineering.
  • Collaborate with internal teams to influence roadmap, product improvements and support business growth.
  • Develop expertise in productionizing systems in Databricks and share your knowledge by contributing to wikis and other technical documentation or to teach our AI systems new skills, which will be used internally and externally by customers and partners.
Desired Qualifications
  • Professional certifications are good to have.
  • Prior experience as Data Scientist, ML Engineer or AI Engineer roles is highly valued.

Databricks provides a unified data and AI platform built around a lakehouse architecture that blends data lakes and data warehouses. It helps organizations ingest, store, manage, and analyze data from various sources, then apply analytics and machine learning at scale. The platform offers automated ETL, secure data sharing, and high-performance analytics, with built-in support for AI workloads and model deployment. Unlike traditional single-purpose data stores, Databricks combines data engineering, data science, and business analytics in one system, aiming to streamline data workflows and make insights readily actionable. Its goal is to enable businesses to manage data more efficiently, accelerate insight generation, and deploy AI and analytics across diverse teams through a subscription-based platform and professional services.

Company Size

10,001+

Company Stage

Debt Financing

Total Funding

$27.1B

Headquarters

San Francisco, California

Founded

2013

Simplify Jobs

Simplify's Take

What believers are saying

  • Asia-Pacific revenue surges 85% YoY in Q4, expanding to 32,000 sq ft Singapore office in 2026.
  • Acquires Antimatter and SiftD.ai to launch Lakewatch, adopted by Adobe and Dropbox.
  • Partners with UiPath and DBOS to enhance AI agent reliability and workflow orchestration.

What critics are saying

  • Snowflake Cortex AI erodes differentiation with cheaper serverless LLMs, churns customers in 6-12 months.
  • Microsoft Fabric's 5x faster queries collapse Azure customers' SQL pricing in 3-9 months.
  • Anthropic terminates Claude partnership in Q1 2026, obsoletes Lakewatch security in 12-24 months.

What makes Databricks unique

  • Databricks unifies data engineering, science, and business on Apache Spark-powered lakehouse.
  • Lakewatch delivers AI agentic SIEM using Anthropic's Claude for petabyte-scale threat detection.
  • Unity Catalog enforces unified governance across data, models, and dashboards.

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Benefits

Extended health care including dental and vision

Life/AD&D and disability coverage

Equity awards

Flexible Vacation

Gym reimbursement

Annual personal development fund

Work headphones reimbursement

Employee Assistance Program (EAP)

Business travel accident insurance

Paid Parental Leave

Growth & Insights and Company News

Headcount

6 month growth

0%

1 year growth

0%

2 year growth

0%
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