Data Science & AI Engineer (Gurugram)

Data Science & AI Engineer (Gurugram)

24 Sep
|
FCS Software Solutions
|
Gurugram

24 Sep

FCS Software Solutions

Gurugram

Job Role: Data Science & AI Engineer - Big Data Specialization

Location: Gurugram

Timings: 8:30am to 5:30pm

Work Mode: In office

About the Role

We are seeking a highly motivated and seasoned Data Science & AI Engineer to join our team in Gurgaon. In this role, you will work at the intersection of enterprise-scale data engineering and advanced machine learning, architecting and deploying impactful AI/ML solutions across the Mobile, Consumer Goods, and Apparel sectors.

You will lead the end-to-end lifecycle of production AI initiativesfrom data ingestion and distributed pipeline design to model development, validation, deployment, and ongoing optimization in large-scale distributed computing environments.

Key Responsibilities

- End-to-End AI/ML Engineering: Design, develop, and deploy scalable predictive models, statistical frameworks, and machine learning pipelines optimized for high-volume enterprise production.
- Big Data Pipeline Design: Build and maintain fault-tolerant, high-throughput data ingestion and ETL/ELT pipelines using distributed technologies (Spark, Hadoop, Kafka) and cloud warehouses.
- Production Deployment & MLOps: Integrate models into cloud-native architectures (GCP, AWS, or Azure), setting up continuous training, monitoring, and validation frameworks to ensure long-term stability and reliability.
- Exploratory Data Analysis: Mine complex, multi-terabyte datasets to uncover trends, anomalies, and actionable drivers using distributed query engines and statistical analysis.
- Rigorous Validation & Experimentation: Implement systematic hyperparameter tuning, cross-validation,



and A/B testing protocols to optimize models for operational accuracy and business impact.
- Cross-Functional Collaboration: Partner with product managers, business stakeholders, and data engineers to translate ambiguous commercial problems into concrete technical roadmaps.
- Mentorship & Technical Standards: Guide and mentor junior engineers, championing software engineering best practices, modular code architecture, version control, and agile delivery.

Required Skills & Qualifications

- Programming & Querying: Advanced proficiency in Python and SQL. Working knowledge of Scala or Java is a plus.
- AI/ML Frameworks: Deep experience with Scikit-learn, TensorFlow, or PyTorch, coupled with distributed ML frameworks (such as Spark MLlib).
- Big Data Technologies: Demonstrated hands-on experience with distributed data processing systems, including Apache Spark, Hadoop ecosystem, Hive, and Apache Kafka.
- Cloud Computing: Strong working knowledge of cloud platforms (Google Cloud Platform preferred, or AWS/Azure) with emphasis on managed Big Data and AI/ML services (e.g., Dataproc, EMR, BigQuery, Vertex AI).
- Data Architecture: Solid understanding of distributed storage, schema modeling,



data warehousing fundamentals, and large-scale ETL pipeline design.
- Software Engineering Fundamentals: Proficiency with Git, CI/CD workflows, unit testing, containerization basics, and agile development methodologies.
- Data Visualization & Communication: Ability to translate complex statistical and architectural concepts into clear narratives for executive and non-technical stakeholders via tools such as Tableau or Power BI.

Preferred Qualifications

- Domain Background: Prior experience delivering data science solutions within Mobile, Consumer Electronics, Fast-Moving Consumer Goods (FMCG), or Retail/Apparel industries.
- Specialized ML Domains: Applied exposure to Natural Language Processing (NLP), Large Language Models (LLMs), or Computer Vision workflows at scale.
- MLOps Proficiency: Experience with orchestration and tracking tools (such as Kubeflow, MLflow, Airflow, or Docker).
- Open Source & Community: Active open-source contributions or a public portfolio (e.g., GitHub, technical publications) showcasing distributed computing and AI implementations.

Education & Certifications

- Education: Bachelors or Masters degree in Computer Science, Data Science, Statistics, Mathematics, Engineering, or a related quantitative discipline.
- Certifications (Bonus): Cloud or Big Data credentials (e.g., Google Cloud Professional Data Engineer/Machine Learning Engineer, AWS Certified Machine Learning Specialty, or Databricks Certified Machine Learning Associate/Professional).

📌 Data Science & AI Engineer (Gurugram)
🏢 FCS Software Solutions
📍 Gurugram

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