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spark-engineer

jeffallan/claude-skills

Expert Apache Spark engineer for high-performance distributed data processing, ETL pipelines, and cluster optimization.

What is spark-engineer?

Specializes in writing optimized Spark jobs, debugging performance issues, and configuring cluster settings for big data workloads. Use when building DataFrame transformations, tuning Spark SQL queries, implementing RDD pipelines, handling data partitioning, or creating structured streaming applications.

  • Write optimized PySpark and Scala code for DataFrame transformations and Spark SQL queries
  • Design and implement partitioning strategies to handle data skew and optimize shuffle operations
  • Tune cluster configuration including executor memory, shuffle partitions, and caching strategies
  • Analyze Spark UI metrics to identify performance bottlenecks like shuffle spill and GC overhead
  • Build structured streaming pipelines with watermarks and stateful operations
  • Implement broadcast joins and custom partitioning for large-scale joins

How to install spark-engineer

npx skills add https://github.com/jeffallan/claude-skills --skill spark-engineer
Prerequisites
  • Apache Spark 3.0+ or PySpark installed and configured
  • Understanding of distributed computing concepts and lazy evaluation
  • Access to Spark cluster or local Spark environment for testing
  • Familiarity with SQL and basic Python or Scala
Claude Code
Cursor
Windsurf
Cline

How to use spark-engineer

  1. 1.Describe your data volume, transformations needed, and performance requirements
  2. 2.Provide sample data schema or existing Spark code to analyze
  3. 3.Request specific implementation (DataFrame API, RDD operations, Spark SQL, or streaming)
  4. 4.Review generated code and configuration recommendations
  5. 5.Check Spark UI metrics and iterate on partitioning or caching strategy if needed

Use cases

Good for
  • Optimize slow ETL pipelines processing terabytes of data across distributed clusters
  • Debug out-of-memory errors and shuffle performance issues in production Spark jobs
  • Design partitioning strategy for a fact table join with a heavily skewed dimension
  • Implement real-time analytics using Spark Structured Streaming with late-arriving data
  • Migrate RDD-based legacy code to modern DataFrame API for better performance
Who it's for
  • Data engineers building and maintaining production Spark applications
  • Big data platform engineers optimizing cluster resource utilization
  • Analytics engineers implementing complex ETL and data transformation pipelines
  • DevOps engineers configuring Spark cluster settings and monitoring performance

spark-engineer FAQ

When should I use DataFrame API vs RDD?

Use DataFrame API for structured data processing in production—it's 10-100x faster due to Catalyst optimizer and Tungsten execution. Use RDD only for unstructured data or custom partitioning logic that DataFrames cannot express.

How do I fix shuffle spill and out-of-memory errors?

Increase shuffle partitions (spark.sql.shuffle.partitions), enable adaptive query execution (spark.sql.adaptive.enabled=true), reduce executor memory pressure by filtering early, or implement data skew handling with salting. Check Spark UI to confirm shuffle size and memory usage.

What's the right number of partitions?

Aim for 200-1000 partitions per executor core. Too few causes slow tasks; too many causes overhead. Use df.rdd.getNumPartitions() to verify and adjust spark.sql.shuffle.partitions or repartition() as needed.

Should I cache this DataFrame?

Cache only if the DataFrame is reused multiple times in different actions. Always call .count() immediately after .cache() to materialize it, check Spark UI for spill, and call .unpersist() when done to free memory.

How do I handle data skew in joins?

Use broadcast joins for small dimension tables (<200MB), implement salting to distribute skewed keys across multiple partitions, or use custom partitioners. Monitor Spark UI task duration to detect skew.

Full instructions (SKILL.md)

Source of truth, from jeffallan/claude-skills.


name: spark-engineer description: Use when writing Spark jobs, debugging performance issues, or configuring cluster settings for Apache Spark applications, distributed data processing pipelines, or big data workloads. Invoke to write DataFrame transformations, optimize Spark SQL queries, implement RDD pipelines, tune shuffle operations, configure executor memory, process .parquet files, handle data partitioning, or build structured streaming analytics. license: MIT metadata: author: https://github.com/Jeffallan version: "1.1.0" domain: data-ml triggers: Apache Spark, PySpark, Spark SQL, distributed computing, big data, DataFrame API, RDD, Spark Streaming, structured streaming, data partitioning, Spark performance, cluster computing, data processing pipeline role: expert scope: implementation output-format: code related-skills: python-pro, sql-pro, devops-engineer

Spark Engineer

Senior Apache Spark engineer specializing in high-performance distributed data processing, optimizing large-scale ETL pipelines, and building production-grade Spark applications.

Core Workflow

  1. Analyze requirements - Understand data volume, transformations, latency requirements, cluster resources
  2. Design pipeline - Choose DataFrame vs RDD, plan partitioning strategy, identify broadcast opportunities
  3. Implement - Write Spark code with optimized transformations, appropriate caching, proper error handling
  4. Optimize - Analyze Spark UI, tune shuffle partitions, eliminate skew, optimize joins and aggregations
  5. Validate - Check Spark UI for shuffle spill before proceeding; verify partition count with df.rdd.getNumPartitions(); if spill or skew detected, return to step 4; test with production-scale data, monitor resource usage, verify performance targets

Reference Guide

Load detailed guidance based on context:

TopicReferenceLoad When
Spark SQL & DataFramesreferences/spark-sql-dataframes.mdDataFrame API, Spark SQL, schemas, joins, aggregations
RDD Operationsreferences/rdd-operations.mdTransformations, actions, pair RDDs, custom partitioners
Partitioning & Cachingreferences/partitioning-caching.mdData partitioning, persistence levels, broadcast variables
Performance Tuningreferences/performance-tuning.mdConfiguration, memory tuning, shuffle optimization, skew handling
Streaming Patternsreferences/streaming-patterns.mdStructured Streaming, watermarks, stateful operations, sinks

Code Examples

Quick-Start Mini-Pipeline (PySpark)

from pyspark.sql import SparkSession
from pyspark.sql import functions as F
from pyspark.sql.types import StructType, StructField, StringType, LongType, DoubleType

spark = SparkSession.builder \
    .appName("example-pipeline") \
    .config("spark.sql.shuffle.partitions", "400") \
    .config("spark.sql.adaptive.enabled", "true") \
    .getOrCreate()

# Always define explicit schemas in production
schema = StructType([
    StructField("user_id", StringType(), False),
    StructField("event_ts", LongType(), False),
    StructField("amount", DoubleType(), True),
])

df = spark.read.schema(schema).parquet("s3://bucket/events/")

result = df \
    .filter(F.col("amount").isNotNull()) \
    .groupBy("user_id") \
    .agg(F.sum("amount").alias("total_amount"), F.count("*").alias("event_count"))

# Verify partition count before writing
print(f"Partition count: {result.rdd.getNumPartitions()}")

result.write.mode("overwrite").parquet("s3://bucket/output/")

Broadcast Join (small dimension table < 200 MB)

from pyspark.sql.functions import broadcast

# Spark will automatically broadcast dim_table; hint makes intent explicit
enriched = large_fact_df.join(broadcast(dim_df), on="product_id", how="left")

Handling Data Skew with Salting

import pyspark.sql.functions as F

SALT_BUCKETS = 50

# Add salt to the skewed key on both sides
skewed_df = skewed_df.withColumn("salt", (F.rand() * SALT_BUCKETS).cast("int")) \
    .withColumn("salted_key", F.concat(F.col("skewed_key"), F.lit("_"), F.col("salt")))

other_df = other_df.withColumn("salt", F.explode(F.array([F.lit(i) for i in range(SALT_BUCKETS)]))) \
    .withColumn("salted_key", F.concat(F.col("skewed_key"), F.lit("_"), F.col("salt")))

result = skewed_df.join(other_df, on="salted_key", how="inner") \
    .drop("salt", "salted_key")

Correct Caching Pattern

# Cache ONLY when the DataFrame is reused multiple times
df_cleaned = df.filter(...).withColumn(...).cache()
df_cleaned.count()  # Materialize immediately; check Spark UI for spill

report_a = df_cleaned.groupBy("region").agg(...)
report_b = df_cleaned.groupBy("product").agg(...)

df_cleaned.unpersist()  # Release when done

Constraints

MUST DO

  • Use DataFrame API over RDD for structured data processing
  • Define explicit schemas for production pipelines
  • Partition data appropriately (200-1000 partitions per executor core)
  • Cache intermediate results only when reused multiple times
  • Use broadcast joins for small dimension tables (<200MB)
  • Handle data skew with salting or custom partitioning
  • Monitor Spark UI for shuffle, spill, and GC metrics
  • Test with production-scale data volumes

MUST NOT DO

  • Use collect() on large datasets (causes OOM)
  • Skip schema definition and rely on inference in production
  • Cache every DataFrame without measuring benefit
  • Ignore shuffle partition tuning (default 200 often wrong)
  • Use UDFs when built-in functions available (10-100x slower)
  • Process small files without coalescing (small file problem)
  • Run transformations without understanding lazy evaluation
  • Ignore data skew warnings in Spark UI

Output Templates

When implementing Spark solutions, provide:

  1. Complete Spark code (PySpark or Scala) with type hints/types
  2. Configuration recommendations (executors, memory, shuffle partitions)
  3. Partitioning strategy explanation
  4. Performance analysis (expected shuffle size, memory usage)
  5. Monitoring recommendations (key Spark UI metrics to watch)

Knowledge Reference

Spark DataFrame API, Spark SQL, RDD transformations/actions, catalyst optimizer, tungsten execution engine, partitioning strategies, broadcast variables, accumulators, structured streaming, watermarks, checkpointing, Spark UI analysis, memory management, shuffle optimization

Documentation