Showing 116762 jobs
Location: Mumbai & Pune
Job Type: Full-time, Remote/Hybrid (2/3 split)
Industry: Healthcare
Language Requirement:
- Proficient in English with strong communication and documentation skills
Experience Level:
- Intermediate to Advanced
- 5+ years of experience
Technical Requirements:
- Expertise in SQL, data engineering, data warehousing, data integration, and data modeling best practices
- Experience with error handling and error logging
- Proficiency with ETL tools such as Azure Data Factory and SSIS
- Experience with API data integration
- Knowledge of Power Automate and Power Apps preferred
- Experience with Power BI or other business intelligence tools is a plus
Responsibilities:
- Design, develop, and maintain robust ETL processes
- Ensure data accuracy and integrity across databases and reporting systems
- Collaborate with stakeholders to understand data requirements and deliver solutions
- Implement data models and optimize data retrieval processes
- Create dashboards and reports for business intelligence insights
- Address client issues with innovative problem-solving and best-practice solutions
- Manage time effectively to meet project deadlines in a remote work environment
- Capture requirements, design technical solutions, develop and test reports, and maintain the health of BI environments
Skills:
- Excellent time management and organizational abilities
- Independent self-starter with a proactive approach to tasks
- Strong problem-solving skills with a creative mindset
- Capable of working autonomously and as part of a small team
Education:
- Bachelor's Degree in Computer Science, Mathematics, Healthcare Management, Engineering, or
- 5+ years of relevant experience in lieu of a degree
Remote
Full Time
Intermediate or Experienced
Job Overview:
The AI Data Engineer is responsible for building and operating high‑quality, governed, and AI‑ready data pipelines that power enterprise GenAI and agent‑based use cases. This role focuses on preparing data for retrieval‑augmented generation (RAG), managing embeddings and vector indexes, and ensuring data quality, lineage, and compliance across the AI platform. As part of the AI CoE Technology pod, the AI Data Engineer enables rapid, responsible AI development by delivering reusable, scalable data foundations. This is a hands‑on individual contributor role within the AI CoE – Technology pod, working closely with AI Platform Engineers and AI Engineers to support both shared platform capabilities and priority AI use cases. The role is intentionally centralized to avoid fragmented data pipelines and to ensure consistent governance, quality, and reuse across the enterprise.
Major Responsibilities:
- Design, build, and maintain data pipelines that ingest, transform, and curate structured and unstructured data for AI use cases.
- Prepare RAG‑ready datasets by applying metadata enrichment, chunking, normalization, and document parsing patterns aligned to platform standards.
- Partner with source system teams and domain SMEs to understand data semantics and ensure accurate representation for AI consumption.
- Create and maintain embedding pipelines, including generation, refresh, and lifecycle management.
- Own vector index maintenance, including re‑indexing strategies, performance tuning, and cleanup of stale or unused embeddings.
- Support knowledge grounding for AI agents by ensuring source attribution, consistency, and traceability.
- Implement data quality checks, validation rules, and monitoring to ensure accuracy, completeness, and reliability of AI datasets.
- Ensure all AI data pipelines comply with enterprise data governance, privacy, and information management policies, including support for regulated and sensitive data use cases.
- Collaborate with Architecture, Security, and Information Governance partners to align data handling with approved AI patterns and risk controls.
- Support AI Engineers during onboarding and troubleshooting by diagnosing data issues that affect agent behavior or retrieval accuracy.
- Contribute reusable data patterns, templates, and documentation to accelerate future AI use cases.
- Participate in platform support activities defined in the AI CoE RACI, particularly those related to data grounding and vector maintenance.
- Optimize data and embedding pipelines for performance, scalability, and cost efficiency, in partnership with Platform Engineers.
- Monitor data freshness and usage trends to recommend retirement, refresh, or enhancement of datasets supporting AI agents.
Qualifications:
- Bachelor’s degree in computer science, Engineering, Data Science, or a related technical discipline OR equivalent combination of education and relevant experience.
- Demonstrated experience designing and operating production-grade data pipelines in an enterprise environment.
- Experience working with unstructured data (documents, text, PDFs) and preparing data for analytics, ML, or AI use cases.
- Working knowledge of embeddings, vector databases, and retrieval patterns used in modern AI and GenAI solutions.
- Strong understanding of data quality, lineage, and governance concepts.
Additional Licensing, Certifications, Registrations:
- Professional certification(s) in area of expertise a plus
-AWS Machine Learning Specialty, Azure AI Engineer Associate, or equivalent cloud certifications.
-Databricks and/or Snowflake certifications
Knowledge, Skills, and Abilities:
- Strong hands-on experience designing and operating data pipelines for analytics, ML, or AI workloads.
- Experience working with unstructured data (documents, PDFs, text) and preparing it for downstream AI or search use cases.
- Knowledge of embeddings, vector databases, and retrieval patterns used in RAG or knowledge-based AI systems.
- Strong understanding of data quality, lineage, and governance concepts in enterprise environments.
- Experience supporting GenAI or agentic AI platforms in a regulated enterprise environment (e.g., healthcare, financial services).
- Familiarity with cloud-native data services and AI platforms commonly used for enterprise AI enablement.
- Experience partnering with platform and application teams in a federated or hub-and-spoke operating model.
- Understanding of healthcare compliance standards (HIPAA, HITRUST) and ethical AI practices (bias, explainability,data privacy).
- Ability to collaborate effectively with cross-functional teams and translate business requirements into technical solutions.
- Strong problem-solving and innovation mindset, with the ability to adapt generative AI to real-world challenges in healthcare and ability to adapt to and adapt to evolving priorities and technologies
- Familiarity with governance and compliance frameworks relevant to healthcare (HIPAA, SOC 2, HITRUST) preferred
Remote
Full Time
Intermediate or Experienced
ABOUT THE COMPANY
At Parable Associates, we specialize in transforming complex data into clear, actionable insights for our clients across various industries. We’re not just another business intelligence company; we’re storytellers, turning data into meaningful narratives that empower organizations to make informed decisions faster. Our innovative approach, combined with a passion for results, makes us the trusted partner for organizations seeking to optimize their data operations and unlock new insights.
ROLE
Are you excited about building the future of data solutions and leveraging cutting-edge cloud technologies? At Parable Associates, you’ll be at the forefront of developing and optimizing data pipelines that drive impactful insights for our clients. You'll do more than just develop data solutions—you’ll be a key partner in shaping how organizations utilize their data to drive innovation and success.
In this role, you'll work closely with both internal teams and clients to design and implement cloud-based data architectures using Microsoft Fabric and similar cloud platforms. You’ll guide the process from data ingestion to transformation and ensure data quality, governance, and efficiency. If you're passionate about solving complex challenges, have a strong understanding of cloud data platforms, and are eager to make an impact, we’d love to have you join our team.
RESPONSIBILITIES
- Design, develop, and maintain scalable, secure, and high-performing data pipelines using Microsoft Fabric, Azure Data Factory, PySpark, and Databricks.
- Create and manage data pipelines to ingest, process, and transform data from various sources into the lakehouse.
- Collaborate with data architects, business analysts, and other stakeholders to understand data requirements and translate them into scalable solutions.
- Build and optimize data models and data warehousing solutions to support business intelligence and advanced analytics, implementing techniques such dimensional modeling, normalization, creating surrogate keys, utilizing Slowly Changing Dimensions, partitioning, and aggregation.
- Perform data transformation and pipeline orchestration using Fabric Notebooks to cleanse and prepare data for report consumption.
- Implement and maintain security measures to protect data assets
- Ensure data quality, integrity, and governance across all stages of the data lifecycle.
- Optimize performance of data ingestion, transformation, and loading processes.
- Proactively identify areas for process improvement, automation, and cost efficiency within the data pipeline infrastructure.
- Provide technical mentorship to junior engineers and collaborate on the adoption of best practices in data engineering.
- Maintain comprehensive documentation of data systems, processes, and workflows.
RESULTS
- Reliable, efficient data pipelines that deliver clean, timely data to stakeholders.
- Scalable, high-performance data platforms that meet client requirements for analytics and reporting.
- Streamlined data workflows that improve time-to-insight for business intelligence initiatives.
- High client satisfaction through seamless data solutions that solve complex challenges.
REQUIREMENTS
- 5+ years of experience in data engineering or a similar role, with a focus on cloud-native technologies.
- Experience in Microsoft Fabric or Azure Data Factory, with hands-on experience designing data pipelines.
- Experience using PySpark in big data processing and transformation
- Strong understanding of data modeling, ETL and ELT processes, and building data warehousing solutions.
- Strong knowledge of modern data architecture principles and best practices.
- Excellent problem-solving skills with the ability to troubleshoot complex data challenges.
- Bachelor’s degree in computer science, information systems, or a related field.
- Highlight motivated, self-starter who can work independently and take initiative to drive projects forward
PREFERRED
- Experience with cloud platforms such as Microsoft Azure.
- Familiarity with Power BI for data visualization and reporting.
- Knowledge of data governance and security best practices.
Remote
Full Time
Senior or Executive
We are seeking a highly capable data quality analyst to develop procedures to enhance the accuracy and integrity of our organization's data. You will be performing data analysis, collaborating with database developers to enhance data collection and storage procedures, and preparing data analysis reports.
To ensure success as a data quality analyst, you should exhibit extensive knowledge of data analysis techniques and experience in a similar role. A top-notch data quality analyst will be someone whose data analysis expertise results in reliable information for company executives.
Data Quality Analyst Responsibilities:
- Performing statistical tests on large datasets to determine data quality and integrity.
- Evaluating system performance and design, as well as its effect on data quality.
- Collaborating with database developers to improve data collection and storage processes.
- Running data queries to identify coding issues and data exceptions, as well as cleaning data.
- Gathering data from primary or secondary data sources to identify and interpret trends.
- Reporting data analysis findings to management to inform business decisions and prioritize information system needs.
- Documenting processes and maintaining data records.
- Adhering to best practices in data analysis and collection.
- Keeping abreast of developments and trends in data quality analysis.
Data Quality Analyst Requirements:
- Bachelor's degree in statistics, mathematics, computer science, information management, or similar.
- At least 5 years of experience in data analysis.
- Proficiency in programming languages, including Structured Query Language (SQL) and JavaScript.
- In-depth knowledge of statistical methods and tests.
- Extensive experience with statistical packages, such as MS Excel, SAS, and SPSS
- Exceptional analytical skills.
- Advanced problem-solving skills.
- Knowledge of best practices in data analysis.
- Excellent interpersonal and communication skills.
On-Site
Full Time
Intermediate or Experienced
$87,000 to $106,600 a year
Full-Stack Data Platform Engineer
$80k – $160k • 0.0% – 0.4%
We’re building Reflow, a workforce and workflow intelligence platform that helps teams deeply understand how work gets done. As we scale, the data we collect is becoming richer and more complex. We need a data platform engineer to help us design and operate the systems that turn that data into intelligence — powering analytics, workflow insights, and economic modeling.
What you’ll do
- Design, implement, and maintain a scalable data warehouse (BigQuery, Snowflake, Redshift, or similar).
- Develop and optimize ETL pipelines to ingest data from APIs and internal systems.
- Model and manage datasets to support flexible analytics and product features.
- Collaborate with engineering team to improve data mining and analytics performance.
- Build and maintain dashboards and visualization tools (Metabase, Tableau, Power BI) to enable internal and external insights.
- Ensure data reliability, cost efficiency, and performance optimization across environments.
- Implement event-based pipelines for real-time analytics and reporting.
- Contribute to data governance, privacy, and security best practices.
Who you are
- Experienced in data warehouse architecture and scalable analytics infrastructure.
- Strong with SQL, data modeling, and pipeline performance optimization.
- Hands-on with ETL tools, data ingestion frameworks, and cloud-based data operations.
- Capable of balancing technical depth with real-world impact — you build systems people actually use.
- Comfortable navigating tradeoffs between cost, scalability, and complexity.
- Curious about how data translates into insights, decisions, and automation.
Bonus points
- Experience with Python for analytics and data wrangling.
- Familiarity with AI/ML-driven analytics or predictive modeling.
- Exposure to real-time or streaming data architectures.
- Understanding of data governance, compliance, and secure cloud operations.
Why join
You’ll build the backbone of Reflow’s intelligence layer, the systems that make our data usable, fast, and insightful. You’ll work directly with founders and engineers across analytics, infrastructure, and product. This is a high-impact technical role that sits at the intersection of scale, performance, and strategy.
We’re open to part or full-time. Ideal for builders who care about performance and precision at scale.
Remote
Contractor
Intermediate or Experienced
Senior Python Engineer - Backend & Data (Remote)
BOLD Business
About Bold Business
Bold Business is an AI-first U.S.-based company building automation systems, AI agents, and production software for clients like AT&T, JP Morgan, and Verizon. We ship real systems that deliver impact — not experiments.
The Role
We’re hiring a Senior Python Engineer who can own both backend systems and the data layer behind them. This role sits between backend and data — you will build APIs, design pipelines, and ensure the data powering AI systems is clean and reliable.
You’ll work under a Lead Architect. You are expected to execute independently and own outcomes.
What You’ll Do
- Build and maintain production Python APIs (FastAPI or similar)
- Design and run data pipelines (ETL, ingestion, transformation)
- Own data quality — validation, monitoring, failure handling
- Structure data for RAG systems and AI agents
- Design and manage databases (PostgreSQL + vector DBs)
- Integrate external systems (APIs, webhooks, third-party tools)
- Debug across backend, data pipelines, and AI outputs
Non-Negotiables (Knockout Requirements)
You should not apply if you cannot clearly demonstrate all of the following:
- Strong English communication (written and spoken)
You can clearly explain technical concepts to non-technical stakeholders and operate in a U.S.-based team environment. - You have built and maintained production Python APIs
(not tutorials or small scripts — real systems in use) - You have owned data pipelines end-to-end
(ingestion → transformation → reliability in production) - You are strong in SQL and database design
(schemas, performance, tradeoffs — not just basic queries) - You have worked with real, messy data
(multiple sources, failures, edge cases — not clean datasets)
Required Skills
- Python (4–6 years, production backend + data work)
- FastAPI or similar frameworks
- Strong SQL and database design
- API integrations (REST, webhooks)
- Testing and clean Git workflows
AI / Data Context (Expected Working Level)
- LLM API integration (OpenAI, Anthropic, etc.)
- Understanding of how RAG systems use data
- Prompt structure and output handling
- Exposure to vector databases (pgvector, Pinecone, etc.)
Nice to Have
- LangChain, LangGraph, CrewAI
- Airflow, Prefect, or pipeline orchestration
- AWS / GCP experience
- Docker / CI-CD
- Basic BI / analytics tools
What This Role Is
- A hands-on builder role
- Ownership of backend + data layer
- High accountability, low hand-holding
What This Role Is Not
- Not a pure Data Engineer
- Not an ML research role
- Not a junior position
Final Note
- We will go deep into your past work.
- If you can clearly explain what you built, why you built it that way, and what broke — you’ll do well here.
- If not, this role will be a stretch.
Bold Business — AI-First. Delivery-First.
On-Site
Full Time
Entry Level
Full-Stack Data Platform Engineer
$80k – $160k • 0.0% – 0.4%
We’re building Reflow, a workforce and workflow intelligence platform that helps teams deeply understand how work gets done. As we scale, the data we collect is becoming richer and more complex. We need a data platform engineer to help us design and operate the systems that turn that data into intelligence — powering analytics, workflow insights, and economic modeling.
What you’ll do
- Design, implement, and maintain a scalable data warehouse (BigQuery, Snowflake, Redshift, or similar).
- Develop and optimize ETL pipelines to ingest data from APIs and internal systems.
- Model and manage datasets to support flexible analytics and product features.
- Collaborate with engineering team to improve data mining and analytics performance.
- Build and maintain dashboards and visualization tools (Metabase, Tableau, Power BI) to enable internal and external insights.
- Ensure data reliability, cost efficiency, and performance optimization across environments.
- Implement event-based pipelines for real-time analytics and reporting.
- Contribute to data governance, privacy, and security best practices.
Who you are
- Experienced in data warehouse architecture and scalable analytics infrastructure.
- Strong with SQL, data modeling, and pipeline performance optimization.
- Hands-on with ETL tools, data ingestion frameworks, and cloud-based data operations.
- Capable of balancing technical depth with real-world impact — you build systems people actually use.
- Comfortable navigating tradeoffs between cost, scalability, and complexity.
- Curious about how data translates into insights, decisions, and automation.
Bonus points
- Experience with Python for analytics and data wrangling.
- Familiarity with AI/ML-driven analytics or predictive modeling.
- Exposure to real-time or streaming data architectures.
- Understanding of data governance, compliance, and secure cloud operations.
Why join
You’ll build the backbone of Reflow’s intelligence layer, the systems that make our data usable, fast, and insightful. You’ll work directly with founders and engineers across analytics, infrastructure, and product. This is a high-impact technical role that sits at the intersection of scale, performance, and strategy.
We’re open to part or full-time. Ideal for builders who care about performance and precision at scale.
Remote
Contractor
Intermediate or Experienced
$80,000 to $160,000 a year
Regional Sales Director - Data Center Build-Out
Mercury Z
Role Summary
Own and grow the Texas & South-Central territory by selling technical workforce solutions into data center construction projects. This is a field-based, hunter role focused on building a pipeline from scratch, developing relationships with key contractors and developers, and closing long-term, high-value service agreements.
Responsibilities
- Build, manage, and convert a pipeline of data center construction opportunities
- Develop relationships with General Contractors (GCs), Electrical Contractors (ECs), and developers
- Own the full sales cycle: prospecting, meetings, proposals, and closing
- Track active projects, bid cycles, and procurement timelines in the region
- Represent the company at job sites, client meetings, and industry events
- Partner with internal delivery teams to position and win work
Requirements
- 5–10+ years in sales or business development roles
- Experience selling staffing, workforce solutions, telecom, or construction services
- Proven track record closing 6–7 figure deals
- Strong ability to build relationships and generate new business
- Comfortable working in a field-based role with regional travel
Territory Overview
Texas & South Central is one of the fastest-growing data center regions, including:
- Dallas–Fort Worth (major hyperscaler cluster)
- Abilene, San Antonio, South Dallas
- Regional coverage: Louisiana, Arkansas, Mississippi, Oklahoma
DFW is the hub — most projects are drivable with occasional regional travel.
Nice to Have
- Existing relationships with contractors or developers in Texas
- Experience selling into data center or large infrastructure projects
- Familiarity with fiber, structured cabling, or low-voltage services
Compensation
- Competitive base salary
- Uncapped commission with strong earning potential
- Performance-based bonuses tied to growth
On-Site
Full Time
Intermediate or Experienced
Regional Sales Director - Data Center Build-Out
BOLD Business
Role Summary
Own and grow the Texas & South-Central territory by selling technical workforce solutions into data center construction projects. This is a field-based, hunter role focused on building a pipeline from scratch, developing relationships with key contractors and developers, and closing long-term, high-value service agreements.
Responsibilities
- Build, manage, and convert a pipeline of data center construction opportunities
- Develop relationships with General Contractors (GCs), Electrical Contractors (ECs), and developers
- Own the full sales cycle: prospecting, meetings, proposals, and closing
- Track active projects, bid cycles, and procurement timelines in the region
- Represent the company at job sites, client meetings, and industry events
- Partner with internal delivery teams to position and win work
Requirements
- 5–10+ years in sales or business development roles
- Experience selling staffing, workforce solutions, telecom, or construction services
- Proven track record closing 6–7 figure deals
- Strong ability to build relationships and generate new business
- Comfortable working in a field-based role with regional travel
Territory Overview
Texas & South Central is one of the fastest-growing data center regions, including:
- Dallas–Fort Worth (major hyperscaler cluster)
- Abilene, San Antonio, South Dallas
- Regional coverage: Louisiana, Arkansas, Mississippi, Oklahoma
DFW is the hub — most projects are drivable with occasional regional travel.
Nice to Have
- Existing relationships with contractors or developers in Texas
- Experience selling into data center or large infrastructure projects
- Familiarity with fiber, structured cabling, or low-voltage services
Compensation
- Competitive base salary
- Uncapped commission with strong earning potential
- Performance-based bonuses tied to growth
On-Site
Full Time
Intermediate or Experienced
Regional Sales Director - Data Center Build-Out
BOLD Business
Role Summary
Build and expand a regional territory by selling workforce solutions into data center construction and infrastructure projects. This is a field-based role focused on developing new business, building long-term client relationships, and driving consistent revenue growth across a highly active and accessible region.
Responsibilities
- Generate new business opportunities and maintain a strong sales pipeline
- Build relationships with GCs, ECs, developers, and subcontractors
- Manage the full sales cycle from prospecting through contract execution
- Monitor project activity, upcoming builds, and procurement cycles
- Engage with clients in the field, including job sites and industry events
- Collaborate with internal teams to deliver competitive solutions
Requirements
- 5–10+ years of experience in sales or business development
- Background in staffing, telecom, construction, or technical services
- Proven ability to close large deals (6–7 figure range)
- Strong relationship-building and communication skills
- Willingness to travel regionally (primarily within driving distance)
Territory Overview
Key markets include:
- Indiana, Ohio, Illinois, Wisconsin, Minnesota, Nebraska
- Major hubs: Indianapolis, Columbus, Chicago
- 19+ active hyperscaler builds
Highly drivable territory with limited air travel.
Nice to Have
- Existing network within Midwest construction or data center markets
- Familiarity with major contractors (e.g., Turner, Mortenson, Holder)
- Experience supporting large-scale infrastructure or hyperscaler projects
Compensation
- Competitive base salary
- Uncapped commission structure
- Bonus incentives tied to territory performance
On-Site
Full Time
Intermediate or Experienced
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